{"meta":{"query_hash":"5b1320e09de8","filters":{"venue":"Ecohydrology"},"cohort_total":223,"direct_labels_cover":2,"predictions_cover":223,"exported":223,"export_cap":100000,"truncated":false,"label_status":"direct model label, unvalidated","prediction_status":"machine_predicted_unvalidated (Codex and Gemma teacher distillation)","score_status":"score_only:v0-immature-baseline","snapshot":{"source":"OpenAlex, pinned release, all 482 partitions","release":"2026-06-24","frame_built":"2026-07-12"},"permalink":"https://metacan.xera.ac/q/5b1320e09de8","api":"https://metacan.xera.ac/api/v1/cohort?venue=Ecohydrology"},"results":[{"id":"W1713015070","doi":"10.1002/eco.1396","title":"Determining appropriate instream flows for anadromous fish passage on an intermittent mainstem river, coastal southern California, USA","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Stillwater (Canada)","funders":"National Marine Fisheries Service; California Ocean Protection Council","keywords":"Fish migration; Tributary; Hydrology (agriculture); Watershed; Environmental science; Dam removal; Groundwater recharge; Channel (broadcasting); Habitat; Streamflow; Fishery; Drainage basin; Geography; Aquifer; Groundwater; Ecology; Geology","score_opus":0.009365946659794394,"score_gpt":0.20530461599387448,"score_spread":0.19593866933408008,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1713015070","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9979691,0.00002893534,0.00023293153,0.000016398326,0.0000025137265,0.000028670816,0.00038608996,0.00002071729,0.0013146622],"genre_scores_gemma":[0.9967282,0.00006495725,0.001747368,0.000022799244,0.0000033173353,0.000056613455,0.00075978687,0.000004432321,0.0006125263],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99984264,0.000013015102,0.0000151570175,0.00005463147,0.000052576463,0.000022028064],"domain_scores_gemma":[0.9993432,0.00008267354,0.00017608602,0.000017414339,0.00028149763,0.00009906682],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003308027,0.00022521913,0.00013459456,0.0009771582,0.0007490823,0.0004997775,0.0003383052,0.00017420416,0.00090655533],"category_scores_gemma":[0.0006783327,0.00013477232,0.00011041054,0.00058006763,0.00024522425,0.00022066169,0.00025517278,0.00017178517,0.00014764785],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00004309671,0.000047412213,0.9869304,0.000018991665,0.000017628558,0.000061246465,0.00020047558,0.0005237172,0.0030338725,0.000034830686,0.00062392146,0.008464516],"study_design_scores_gemma":[0.0000040585446,0.000076039505,0.997306,0.0000104780065,0.0000138453415,0.000018405264,0.00049838,0.00101499,0.0004919963,0.000019756684,0.0005431959,0.0000028683794],"about_ca_topic_score_codex":0.0935934,"about_ca_topic_score_gemma":0.4227576,"teacher_disagreement_score":0.0935934,"about_ca_system_score_codex":0.00084965274,"about_ca_system_score_gemma":0.0010683801,"threshold_uncertainty_score":0.18609726},"labels":[],"label_agreement":null},{"id":"W1725948164","doi":"10.1002/eco.1260","title":"The impact of soil moisture availability on forest growth indices for variably layered coarse‐textured soils","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Unsaturated Flow","field":"Engineering","cited_by":40,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Saskatchewan","funders":"Egg Farmers of Canada","keywords":"Environmental science; Soil water; Biome; Soil texture; Water content; Primary production; Biomass (ecology); Leaf area index; Hydrology (agriculture); Soil science; Agronomy; Ecosystem; Ecology; Geology","score_opus":0.009768976467997112,"score_gpt":0.2331999341001807,"score_spread":0.22343095763218357,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1725948164","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99954283,0.000016552938,0.00019011524,0.000003980327,7.420231e-7,0.000001565285,0.00012020448,0.000011889547,0.0001122233],"genre_scores_gemma":[0.9997757,0.0000049621,0.000082404935,0.0000015385626,2.8070738e-7,6.747583e-7,0.000100904384,0.0000012903972,0.000032279284],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999192,0.000014253158,0.00000406222,0.00001974576,0.000023821158,0.00001893847],"domain_scores_gemma":[0.9996407,0.00015612996,0.000061145496,0.00003195183,0.000054790722,0.000055291483],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022353632,0.00028925986,0.00014414574,0.0002366955,0.000108029984,0.00029397762,0.00020303843,0.00017258554,0.00043926766],"category_scores_gemma":[0.0005789155,0.00008939945,0.0001755595,0.00019938132,0.00016520054,0.00017742257,0.00014397567,0.0001427756,0.00007478073],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0012780521,0.00014462807,0.77614695,0.000050466893,0.00018552964,0.00019439407,0.0000722151,0.10888648,0.100347765,0.00010130898,0.00023645748,0.0123556275],"study_design_scores_gemma":[0.000013112089,0.000101782935,0.8937667,0.0000018212503,0.00002284524,0.000045729652,0.000051432486,0.09976465,0.0060842726,0.00003827047,0.000100039455,0.000009272609],"about_ca_topic_score_codex":0.050365206,"about_ca_topic_score_gemma":0.06737389,"teacher_disagreement_score":0.050365206,"about_ca_system_score_codex":0.0006118751,"about_ca_system_score_gemma":0.00020389108,"threshold_uncertainty_score":0.10014409},"labels":[],"label_agreement":null},{"id":"W1751234570","doi":"10.1002/eco.1284","title":"Soil properties affect pinyon pine – juniper response to drought","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":56,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"University of British Columbia; Smithsonian Conservation Biology Institute; Oregon State University; National Aeronautics and Space Administration","keywords":"Juniper; Woodland; Environmental science; Canopy; Soil water; Shrub; Grassland; Leaf area index; Growing season; Forestry; Agronomy; Geography; Hydrology (agriculture); Ecology; Biology; Soil science; Geology","score_opus":0.009405710966122822,"score_gpt":0.2056274225792263,"score_spread":0.19622171161310348,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1751234570","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99962497,0.00003937595,0.000056333025,0.000004761921,0.0000014467496,0.0000021433182,0.00010158354,0.000005646299,0.00016373368],"genre_scores_gemma":[0.9997098,0.000019398467,0.00004161952,0.000007422833,0.0000011377651,0.0000016143214,0.00014669867,0.0000012624201,0.000071033086],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993014,0.000015834474,0.000004150175,0.000024115783,0.000008574663,0.000017106326],"domain_scores_gemma":[0.9997787,0.000044186458,0.00008425115,0.000012133664,0.000027793205,0.00005292458],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021513231,0.0002466111,0.0001892327,0.00019566332,0.00016427862,0.00028140852,0.00015211335,0.00015727976,0.0006531439],"category_scores_gemma":[0.00031392457,0.0000878302,0.0001440615,0.00017809037,0.000095153235,0.00011401405,0.00018486951,0.00017080193,0.00008309421],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004836977,0.00012892541,0.94058794,0.000051288418,0.00012230511,0.0002928186,0.00019935804,0.0029897718,0.049339436,0.000060768536,0.00026058135,0.005483097],"study_design_scores_gemma":[0.0000020206346,0.000062331674,0.9981115,0.0000015101328,0.000007484321,0.000042989603,0.000081236154,0.0010419425,0.00052549265,0.000015723976,0.000105147956,0.0000025837116],"about_ca_topic_score_codex":0.006572451,"about_ca_topic_score_gemma":0.013400658,"teacher_disagreement_score":0.006572451,"about_ca_system_score_codex":0.00025534898,"about_ca_system_score_gemma":0.000105545856,"threshold_uncertainty_score":0.013068378},"labels":[],"label_agreement":null},{"id":"W1793346039","doi":"10.1002/eco.1468","title":"Morphological development and environmental degradation of superhydrophobic aspen and black locust leaf surfaces","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Surface Modification and Superhydrophobicity","field":"Materials Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Wax; Materials science; Nanoscopic scale; Relative humidity; Robinia; Precipitation; Scanning electron microscope; Growing season; Environmental science; Horticulture; Botany; Composite material; Nanotechnology; Biology; Meteorology","score_opus":0.016370819065190435,"score_gpt":0.20739858498245514,"score_spread":0.1910277659172647,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1793346039","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9993131,0.00007566756,0.00022838033,0.0000037944562,0.0000011417682,0.000003893418,0.0001134257,0.000006936692,0.00025367184],"genre_scores_gemma":[0.99841344,0.00006842448,0.00045780384,0.000010546003,9.0906383e-7,0.0000073881524,0.00026280337,0.000007435625,0.00077124324],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99993587,0.000005626432,0.000003431408,0.000014912111,0.000025906185,0.000014268221],"domain_scores_gemma":[0.9998758,0.000018053448,0.000046173827,0.0000111574345,0.000018926781,0.000029955987],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007977101,0.00014438454,0.000116631265,0.0001954174,0.000110357374,0.00019960539,0.00011224555,0.00015210132,0.0006832656],"category_scores_gemma":[0.000134582,0.00011650356,0.00016171935,0.00012858403,0.00013138587,0.00014843314,0.00013820242,0.0002353498,0.000107244174],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000045866716,0.000003928742,0.0008646907,0.000008981041,0.000002796026,0.000034974146,0.000019348665,0.000029094024,0.99856585,0.000006175105,0.0000039306983,0.0004144167],"study_design_scores_gemma":[0.00000556908,0.00034757343,0.24634102,0.0000037282746,0.000012449907,0.0003957248,0.0001703941,0.0010826626,0.7509918,0.000024407278,0.0006158222,0.000008844065],"about_ca_topic_score_codex":0.00096576556,"about_ca_topic_score_gemma":0.0012657167,"teacher_disagreement_score":0.00096576556,"about_ca_system_score_codex":0.00017395202,"about_ca_system_score_gemma":0.00007498639,"threshold_uncertainty_score":0.0022857785},"labels":[],"label_agreement":null},{"id":"W1793933723","doi":"10.1002/eco.1346","title":"Comparative studies on turbulent fluxes measured over burned and unburned sites of a sagebrush‐dominated mountain","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Kimberly-Clark (Canada)","funders":"National Science Foundation","keywords":"Sensible heat; Latent heat; Environmental science; Eddy covariance; Bowen ratio; Atmospheric sciences; Evapotranspiration; Hydrology (agriculture); Daytime; Climatology; Meteorology; Ecosystem; Geology; Ecology; Geography","score_opus":0.02536434931895084,"score_gpt":0.2685921053509218,"score_spread":0.24322775603197097,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1793933723","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998417,0.000013245931,0.00003462554,0.0000010726527,5.0831875e-7,7.533098e-7,0.00003117245,7.6525583e-7,0.00007618451],"genre_scores_gemma":[0.99962974,0.000020137117,0.00008922615,0.000003235965,0.0000015811812,0.0000024798398,0.00015554862,0.0000016013248,0.000096508025],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993956,0.000010229002,0.0000048905013,0.000016917837,0.000012819464,0.000015577327],"domain_scores_gemma":[0.99984777,0.000031812368,0.000050408526,0.000007793473,0.000027617196,0.000034564022],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015588006,0.0001776284,0.00017978098,0.00056019315,0.00035588263,0.00041011893,0.00012706738,0.0001290305,0.00045941255],"category_scores_gemma":[0.0002084577,0.00012619462,0.00015624629,0.00037414534,0.00022046716,0.00020406183,0.00020983447,0.00013608305,0.00006597836],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007732105,0.00009189943,0.9087522,0.0000543091,0.00012951199,0.0002621671,0.0012162945,0.0010928729,0.08232956,0.00006577483,0.000047833913,0.005184176],"study_design_scores_gemma":[0.00000193743,0.000022461822,0.9986066,0.0000015133162,0.0000044951153,0.000020957974,0.00014788569,0.00026533604,0.0008893596,0.00000487238,0.00003225593,0.0000023409905],"about_ca_topic_score_codex":0.007677792,"about_ca_topic_score_gemma":0.023020443,"teacher_disagreement_score":0.007677792,"about_ca_system_score_codex":0.00029598307,"about_ca_system_score_gemma":0.00011999863,"threshold_uncertainty_score":0.01526618},"labels":[],"label_agreement":null},{"id":"W1840481326","doi":"10.1002/eco.1399","title":"Characterization of the fluxes and stores of water within newly formed <i>Sphagnum</i> moss cushions and their environment","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Sphagnum; Peat; Water table; Moss; Environmental science; Water content; Bog; Drainage; Hydrology (agriculture); Precipitation; Moisture; Geology; Groundwater; Ecology; Chemistry; Geography; Biology; Geotechnical engineering","score_opus":0.003842547977333705,"score_gpt":0.16208320721310313,"score_spread":0.1582406592357694,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1840481326","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.999203,0.000081529,0.0003687605,0.0000045371726,0.0000010511486,0.0000027711253,0.00009786344,0.000010312115,0.00023030251],"genre_scores_gemma":[0.99883133,0.000047893147,0.000552128,0.0000065203003,0.0000013090104,0.0000043568234,0.0002131289,0.0000076199503,0.00033560477],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99996865,0.0000019625445,0.000001476767,0.000013873386,0.0000061754054,0.000007922968],"domain_scores_gemma":[0.9998741,0.000014985748,0.000035637935,0.0000073619667,0.00002212236,0.00004575661],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00007941632,0.00014516313,0.00010530638,0.00033390627,0.00015521144,0.00030692236,0.00013684531,0.00012518093,0.00057811075],"category_scores_gemma":[0.00008214469,0.00010366701,0.00008746187,0.00017043782,0.00018344389,0.0002625105,0.00012560205,0.00022269411,0.00015052664],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009631733,0.000009865029,0.015297825,0.000020226886,0.0000072087214,0.0000716566,0.000064222644,0.00008476232,0.9820917,0.000052471456,0.000021614174,0.0021820574],"study_design_scores_gemma":[0.000009690376,0.00017721187,0.7756344,0.000009643276,0.000017216857,0.00030860445,0.00032846793,0.002753368,0.21894474,0.000103676575,0.0016989828,0.000013965925],"about_ca_topic_score_codex":0.005383776,"about_ca_topic_score_gemma":0.006216044,"teacher_disagreement_score":0.005383776,"about_ca_system_score_codex":0.000319224,"about_ca_system_score_gemma":0.00015510315,"threshold_uncertainty_score":0.010704935},"labels":[],"label_agreement":null},{"id":"W1842539823","doi":"10.1002/eco.1332","title":"The effects of sand abrasion of a predominantly stable stream bed on periphyton biomass losses","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":26,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo; McGill University; Trent University","funders":"Fonds Québécois de la Recherche sur la Nature et les Technologies; Natural Sciences and Engineering Research Council of Canada; McGill University","keywords":"Periphyton; Flume; Bed load; Biomass (ecology); Sediment transport; Sediment; Geology; Environmental science; Hydrology (agriculture); Algae; Soil science; Ecology; Flow (mathematics); Geomorphology; Geotechnical engineering; Biology; Oceanography","score_opus":0.00449370881333527,"score_gpt":0.21137188280921,"score_spread":0.20687817399587471,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1842539823","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998828,0.000009864064,0.000029304321,0.0000012760307,5.81126e-7,9.2090744e-7,0.0000168993,0.0000014446573,0.000056876645],"genre_scores_gemma":[0.9997874,0.000009786928,0.00003980901,0.0000046393407,9.612997e-7,0.0000018939289,0.000027825112,7.9799196e-7,0.0001268825],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999167,0.000019675557,0.0000069901043,0.000020382298,0.000015812167,0.000020398827],"domain_scores_gemma":[0.9995028,0.00018971712,0.00013535036,0.00002970379,0.000047092955,0.000095389034],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014637252,0.00021988084,0.00019054719,0.0001707205,0.00018133942,0.0003387575,0.00014550418,0.00016123294,0.00094047724],"category_scores_gemma":[0.0004275534,0.000093655566,0.00018978327,0.00007675294,0.00017637106,0.00012701954,0.00016768568,0.00020262787,0.00007342472],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0042571216,0.0005528944,0.2513082,0.00015192007,0.00016413526,0.0003009969,0.00025902197,0.003361107,0.7275407,0.00005160053,0.00011965353,0.011932728],"study_design_scores_gemma":[0.0000116573765,0.001651087,0.9730881,0.00000426278,0.000027979237,0.000059907685,0.00014544447,0.0022026282,0.022645464,0.000021504986,0.00013709343,0.0000048826982],"about_ca_topic_score_codex":0.0034273085,"about_ca_topic_score_gemma":0.0051607345,"teacher_disagreement_score":0.0034273085,"about_ca_system_score_codex":0.0003392882,"about_ca_system_score_gemma":0.000120333454,"threshold_uncertainty_score":0.0068147182},"labels":[],"label_agreement":null},{"id":"W1845036612","doi":"10.1002/eco.1488","title":"Resource subsidy flows across freshwater–terrestrial boundaries and influence on processes linking adjacent ecosystems","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":146,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Ecosystem; Environmental science; Trophic level; Riparian zone; Ecology; Subsidy; Freshwater ecosystem; Ecological stability; Population; Resource (disambiguation); Aquatic ecosystem; Foraging; Ecosystem services; Terrestrial ecosystem; Habitat; Biology","score_opus":0.0070908868407814655,"score_gpt":0.21752957904390732,"score_spread":0.21043869220312586,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1845036612","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9948419,0.00018389309,0.00074877014,0.00016753447,0.0000075506896,0.0000064426863,0.00011177202,0.00001866452,0.003913462],"genre_scores_gemma":[0.9993955,0.00005668132,0.00014724873,0.000019678508,0.0000028999902,0.0000020989967,0.000029803085,0.000003963155,0.00034216678],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99983454,0.00004936302,0.000010001905,0.00004947396,0.000021371387,0.00003521221],"domain_scores_gemma":[0.9988686,0.00043020857,0.0002972595,0.000055818156,0.000103334525,0.00024487675],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004232617,0.000112250156,0.00021923981,0.00063306384,0.0004195861,0.0013313454,0.0001998322,0.00023802597,0.0047835186],"category_scores_gemma":[0.0020713215,0.000108454,0.00019354174,0.0007252548,0.0009673393,0.0007430947,0.0011841666,0.00025841483,0.00022133575],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000352938,0.00016146908,0.873548,0.00025414187,0.00031109885,0.0009720227,0.003048143,0.016238444,0.019661192,0.0154614365,0.0018558722,0.06813533],"study_design_scores_gemma":[0.000006351213,0.00003972121,0.9881592,0.000021893627,0.00002875841,0.000055652526,0.0007643099,0.005192591,0.00027475576,0.0041033626,0.0013386172,0.000014836505],"about_ca_topic_score_codex":0.014644657,"about_ca_topic_score_gemma":0.011903581,"teacher_disagreement_score":0.014644657,"about_ca_system_score_codex":0.0006528694,"about_ca_system_score_gemma":0.00055178977,"threshold_uncertainty_score":0.029118836},"labels":[],"label_agreement":null},{"id":"W1862094238","doi":"10.1002/eco.1309","title":"The response of semi‐arid ephemeral wetland plants to flooding: linking water use to hydrological processes","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant responses to water stress","field":"Agricultural and Biological Sciences","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Department of Environment and Conservation","funders":"Future Farm Industries Cooperative Research Centre; McKnight Foundation","keywords":"Environmental science; Hydrology (agriculture); Wetland; Ephemeral key; Arid; Flood myth; Surface runoff; Water table; Groundwater recharge; Ecology; Groundwater; Geology; Geography; Biology","score_opus":0.027836731260763185,"score_gpt":0.23175528534792544,"score_spread":0.20391855408716225,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1862094238","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998932,0.000006366902,0.000024723091,0.0000019001199,1.9907985e-7,0.0000015592977,0.000023756562,0.0000011482375,0.000047092035],"genre_scores_gemma":[0.99984264,0.000007752528,0.000043501954,0.0000030651481,5.026732e-7,0.000004719281,0.000047664682,5.8462115e-7,0.00004953659],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999608,0.0000075423663,0.0000027920307,0.000011440483,0.0000061400697,0.00001130834],"domain_scores_gemma":[0.9998416,0.000027967944,0.000062345345,0.0000069849284,0.000017538936,0.000043534943],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009217161,0.000112772315,0.00016819667,0.00025806052,0.00027991325,0.00025120788,0.00014732707,0.00016574979,0.00046791285],"category_scores_gemma":[0.00013896104,0.00010695802,0.00010432847,0.00021268446,0.00022818141,0.00016992181,0.00026963258,0.0001920509,0.000041536765],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00046642974,0.00018407647,0.5436286,0.000071061935,0.00007904673,0.00020301748,0.0008472598,0.00053521694,0.4490238,0.0000690057,0.000066109846,0.0048263674],"study_design_scores_gemma":[0.0000020314544,0.00008546705,0.9981741,8.545743e-7,0.000003837388,0.00002464267,0.00014658918,0.00039881363,0.0010889077,0.000017758593,0.00005469651,0.0000023558991],"about_ca_topic_score_codex":0.0043666316,"about_ca_topic_score_gemma":0.008032314,"teacher_disagreement_score":0.0043666316,"about_ca_system_score_codex":0.0002481111,"about_ca_system_score_gemma":0.0001339687,"threshold_uncertainty_score":0.00868243},"labels":[],"label_agreement":null},{"id":"W1877047669","doi":"10.1002/eco.1305","title":"Relating extremes of flow and air temperature to stream fish communities","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Trent University; Ministry of Natural Resources and Forestry","funders":"U.S. Geological Survey","keywords":"Environmental science; STREAMS; Abiotic component; Climate change; Biomass (ecology); Abundance (ecology); Ecology; Hydrology (agriculture); Biology","score_opus":0.00923045079017652,"score_gpt":0.20713291434505532,"score_spread":0.1979024635548788,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1877047669","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99966073,0.000017144452,0.00008455382,0.0000042661395,6.670685e-7,0.000002109235,0.00011799826,0.0000018596722,0.00011059652],"genre_scores_gemma":[0.9996737,0.000015026861,0.00007864627,0.0000030885665,8.8199846e-7,0.0000028232294,0.00013097559,8.515821e-7,0.00009403619],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998592,0.00003546483,0.000009683635,0.000033272594,0.000033894135,0.000028524364],"domain_scores_gemma":[0.99908376,0.00030447394,0.00026884445,0.000027342352,0.000111288646,0.00020441024],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003964053,0.00010784821,0.00015639458,0.00051057123,0.00021374301,0.00038841643,0.00009702349,0.00015368867,0.0007977468],"category_scores_gemma":[0.001473038,0.00011055402,0.00015335987,0.00033983286,0.00022744658,0.00016401052,0.00030233947,0.0002070582,0.00008272262],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009426161,0.000013331706,0.9955129,0.000006258237,0.000056941673,0.000020324684,0.000072062685,0.0008400833,0.0021179768,0.000011395375,0.00004562399,0.0012089495],"study_design_scores_gemma":[7.621734e-7,0.00002748229,0.9991399,8.708279e-7,0.000005232227,0.000011833453,0.000045975,0.0006379531,0.00008430981,0.000016455935,0.000027803406,0.0000014173376],"about_ca_topic_score_codex":0.03286643,"about_ca_topic_score_gemma":0.058542468,"teacher_disagreement_score":0.03286643,"about_ca_system_score_codex":0.00044376508,"about_ca_system_score_gemma":0.0003228693,"threshold_uncertainty_score":0.065350235},"labels":[],"label_agreement":null},{"id":"W1877834501","doi":"10.1002/eco.1498","title":"The hydrology of the Bois‐des‐Bel peatland restoration: hydrophysical properties limiting connectivity between regenerated <i>Sphagnum</i> and remnant vacuum harvested peat deposit","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":67,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Sphagnum; Peat; Hydraulic conductivity; Moss; Hydrology (agriculture); Environmental science; Soil science; Water table; Geology; Soil water; Botany; Ecology; Groundwater; Biology","score_opus":0.012242084992485646,"score_gpt":0.19815994782647323,"score_spread":0.1859178628339876,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1877834501","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996208,0.000012658273,0.000070044334,0.0000064105275,8.4075634e-7,0.0000023388648,0.000031944855,0.000007553693,0.00024738253],"genre_scores_gemma":[0.9997634,0.000005547551,0.00007010706,0.0000034028062,3.6093593e-7,0.0000023959594,0.00004658687,0.0000023052178,0.000105841136],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99988294,0.000012395458,0.0000050530602,0.000034565437,0.00002250499,0.000042594296],"domain_scores_gemma":[0.99976605,0.000028280432,0.000056364137,0.000011628889,0.000036804842,0.00010085963],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025578708,0.00017540975,0.00032554162,0.00035285534,0.00057899195,0.0005993616,0.00026691117,0.0002409289,0.0009804099],"category_scores_gemma":[0.00023519792,0.00024122841,0.0001919178,0.00016677119,0.00061517104,0.00039196663,0.0004096754,0.00034318416,0.00017078823],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.001173896,0.00022724654,0.40213728,0.00007567993,0.00009158652,0.00027371445,0.0008631416,0.0020752049,0.58504355,0.00033894624,0.0002644728,0.007435326],"study_design_scores_gemma":[0.000010850025,0.00013405387,0.9910529,0.0000040318137,0.000013742559,0.000058552017,0.00028168163,0.0015693238,0.006302871,0.0000273421,0.00053871685,0.000005936112],"about_ca_topic_score_codex":0.049399994,"about_ca_topic_score_gemma":0.080263644,"teacher_disagreement_score":0.049399994,"about_ca_system_score_codex":0.001585331,"about_ca_system_score_gemma":0.00052944414,"threshold_uncertainty_score":0.09822494},"labels":[],"label_agreement":null},{"id":"W1879003664","doi":"10.1002/eco.1261","title":"Multi‐century reconstructions of Pacific salmon abundance from climate‐sensitive tree rings in west central British Columbia, Canada","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Victoria","funders":"National Center for Atmospheric Research","keywords":"Oncorhynchus; Escapement; Chinook wind; Dendrochronology; Abundance (ecology); Geography; Proxy (statistics); Fishery; Historical record; Oceanography; Population; Climate change; Environmental science; Climatology; Physical geography; Geology; Archaeology; Fish <Actinopterygii>; Biology","score_opus":0.007241968027815138,"score_gpt":0.18558060215509037,"score_spread":0.17833863412727524,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1879003664","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9942095,0.00038161292,0.0006369782,0.00006332254,0.0000053887334,0.000005434427,0.003375668,0.000049212424,0.0012728762],"genre_scores_gemma":[0.9960955,0.00023397115,0.00063358404,0.000011641075,0.000002059211,0.0000061237424,0.0024131855,0.000014274415,0.00058982224],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999074,0.000010505809,0.0000056114827,0.000033172775,0.00001886717,0.00002455426],"domain_scores_gemma":[0.9995388,0.000053395826,0.000080024496,0.000038176986,0.00021584186,0.00007386009],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00035157916,0.00021715339,0.00015805809,0.001468854,0.0008273622,0.00088436535,0.00054544763,0.0003500261,0.0014513369],"category_scores_gemma":[0.00091366866,0.00026500836,0.0002591254,0.0020313726,0.0002700692,0.00027184575,0.00037249757,0.00028622057,0.00027667655],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000099730554,0.000033892673,0.90859866,0.00007088099,0.00023196565,0.00031471584,0.000716194,0.056497224,0.0021138908,0.00046795403,0.0030786616,0.027776254],"study_design_scores_gemma":[0.000010029729,0.00000766613,0.9525932,0.000049404698,0.000040587332,0.00006734153,0.00042646396,0.041885857,0.00030129764,0.00015116483,0.0044379057,0.000029087434],"about_ca_topic_score_codex":0.9329262,"about_ca_topic_score_gemma":0.9710622,"teacher_disagreement_score":0.06707382,"about_ca_system_score_codex":0.004745479,"about_ca_system_score_gemma":0.0031937715,"threshold_uncertainty_score":0.13493764},"labels":[],"label_agreement":null},{"id":"W1879570546","doi":"10.1002/eco.1619","title":"Flood flow attenuation diminishes cottonwood colonization sites: an experimental test along the Boise River, USA","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fire effects on ecosystems","field":"Environmental Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Lethbridge","funders":"Natural Sciences and Engineering Research Council of Canada; U.S. Army Corps of Engineers; Alberta Innovates; Department of Water Resources","keywords":"Floodplain; Colonization; Channel (broadcasting); Hydrology (agriculture); Vegetation (pathology); Riparian zone; Environmental science; Flood myth; Ecology; Geology; Biology; Geography","score_opus":0.016979779913532823,"score_gpt":0.24015943899056483,"score_spread":0.223179659077032,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1879570546","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99967265,0.000008673066,0.00009564601,0.000011544337,0.0000030174826,0.000028654593,0.000020211652,0.0000042190336,0.00015537739],"genre_scores_gemma":[0.9968707,0.000052111445,0.001033723,0.0000695588,0.000006422456,0.00034580662,0.00016189604,0.000012124984,0.0014477217],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995158,0.00013848582,0.000020159552,0.00013264913,0.00008720698,0.00010575781],"domain_scores_gemma":[0.9986644,0.00044737072,0.00024766938,0.00012260092,0.00016796774,0.00035002024],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006217287,0.00043709166,0.000426231,0.00047603462,0.0008890904,0.00045597588,0.00078269443,0.0005736732,0.0017725494],"category_scores_gemma":[0.00082192454,0.00033205142,0.0003906182,0.0003460901,0.0011013477,0.00038612692,0.00058977684,0.0013879891,0.00016173477],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.01624196,0.048948634,0.074809335,0.00029543665,0.00021768495,0.00088682695,0.0040730676,0.003545363,0.8322826,0.00074729684,0.0010123391,0.016939482],"study_design_scores_gemma":[0.0018772528,0.18762673,0.6519192,0.00006804132,0.0005256039,0.0002801995,0.0049003162,0.018111909,0.12896174,0.000615281,0.004927184,0.00018654838],"about_ca_topic_score_codex":0.017558629,"about_ca_topic_score_gemma":0.03593024,"teacher_disagreement_score":0.017558629,"about_ca_system_score_codex":0.00082644896,"about_ca_system_score_gemma":0.0008790168,"threshold_uncertainty_score":0.034912884},"labels":[],"label_agreement":null},{"id":"W1889351381","doi":"10.1002/eco.1445","title":"Sand dune stabilization reduces infiltration and soil moisture: a case study from the northern Great Plains","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Aeolian processes and effects","field":"Earth and Planetary Sciences","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge; University of Calgary","funders":"Alberta Innovates; U.S. Department of Agriculture","keywords":"Infiltration (HVAC); Sand dune stabilization; Aeolian processes; Water content; Hydrology (agriculture); Silt; Environmental science; Soil science; Moisture; Vegetation (pathology); Growing season; Soil water; Geology; Geomorphology; Ecology; Geography","score_opus":0.008949354973989616,"score_gpt":0.19985726660945027,"score_spread":0.19090791163546067,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1889351381","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996649,0.000015117399,0.000022025744,0.000029317023,4.6899518e-7,0.00000408658,0.000037947913,0.0000021164435,0.00022408272],"genre_scores_gemma":[0.99948263,0.000047025947,0.00013078244,0.000017989267,0.0000020605498,0.000004197769,0.000068820955,0.0000014347801,0.00024502916],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998436,0.000043395754,0.000007672819,0.000031246418,0.00003461874,0.000039488248],"domain_scores_gemma":[0.9995321,0.00015448753,0.000085262676,0.000037868944,0.00009566313,0.000094510215],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021088327,0.000250802,0.00019914875,0.00046601932,0.00094634766,0.0005515871,0.000398754,0.00036321956,0.00058142404],"category_scores_gemma":[0.00068091275,0.0001478045,0.00021437858,0.0010549156,0.000694327,0.00024435067,0.0003910174,0.00025806692,0.00005322729],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00013653339,0.00035137532,0.96724856,0.000056883997,0.0001008305,0.011438305,0.0050277933,0.0019687572,0.0037279832,0.00016522982,0.00061555003,0.009162292],"study_design_scores_gemma":[0.0000135759665,0.000056102566,0.9917612,0.000008850325,0.000025374085,0.0004908775,0.005174477,0.001530983,0.00030597456,0.000046825986,0.00057709607,0.000008789125],"about_ca_topic_score_codex":0.44834104,"about_ca_topic_score_gemma":0.6428274,"teacher_disagreement_score":0.44834104,"about_ca_system_score_codex":0.0019490859,"about_ca_system_score_gemma":0.0012114974,"threshold_uncertainty_score":0.8914628},"labels":[],"label_agreement":null},{"id":"W1891842820","doi":"10.1002/eco.1320","title":"Effects of reforestation on near‐surface saturated hydraulic conductivity in a managed forest landscape, southern Ontario, Canada","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Unsaturated Flow","field":"Engineering","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Trent University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Reforestation; Understory; Environmental science; Chronosequence; Soil water; Bulk density; Hardwood; Agroforestry; Forest management; Forestry; Soil science; Ecology; Geography; Canopy; Biology","score_opus":0.004495955353366271,"score_gpt":0.17201562524138633,"score_spread":0.16751966988802006,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1891842820","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9983302,0.00013225508,0.00003190398,0.000051479878,0.0000018039858,0.000008077151,0.00047923677,0.00000419071,0.0009609429],"genre_scores_gemma":[0.9986947,0.000110689085,0.0000857639,0.000019710411,0.0000011058103,0.000005940157,0.00035939136,0.0000018899008,0.00072086795],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997588,0.000020398913,0.000010366851,0.00004301175,0.00008151835,0.00008588485],"domain_scores_gemma":[0.99908316,0.00005852015,0.00014981686,0.000027922915,0.00046499594,0.00021557133],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000217012,0.00016545529,0.00019226453,0.0005255192,0.0016192026,0.0006671352,0.0005180449,0.00016113796,0.0009451101],"category_scores_gemma":[0.000650931,0.00015499463,0.00016401647,0.0013189543,0.0006078343,0.00020290626,0.00028023208,0.00018415118,0.000087828696],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016413195,0.000042736385,0.98578286,0.00004094902,0.000057124587,0.0002389147,0.0019876084,0.00041549612,0.0032368344,0.00011557072,0.0009173463,0.0070004268],"study_design_scores_gemma":[0.0000029942325,0.000008241025,0.99885523,0.0000051017273,0.0000047276367,0.0000128395095,0.0005489136,0.00010424704,0.000043455097,0.000008713452,0.0004030097,0.0000024728147],"about_ca_topic_score_codex":0.9927839,"about_ca_topic_score_gemma":0.9985398,"teacher_disagreement_score":0.0181957,"about_ca_system_score_codex":0.0181957,"about_ca_system_score_gemma":0.010249033,"threshold_uncertainty_score":0.1320197},"labels":[],"label_agreement":null},{"id":"W1899047955","doi":"10.1002/eco.1424","title":"Forest ecohydrological response to bimodal precipitation during contrasting winter to summer transitions","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"National Science Foundation","keywords":"Environmental science; Evapotranspiration; Surface runoff; Hydrology (agriculture); Infiltration (HVAC); Precipitation; Ecohydrology; Snow; Water content; Groundwater recharge; Vegetation (pathology); Climate change; Ecosystem; Groundwater; Geology; Ecology; Geography; Aquifer","score_opus":0.010066112572373378,"score_gpt":0.22547800347990243,"score_spread":0.21541189090752905,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1899047955","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996037,0.000005366474,0.00016010861,0.000007765473,6.859058e-7,0.000002008321,0.000097623255,0.000011810439,0.00011096293],"genre_scores_gemma":[0.9997873,0.0000037534642,0.000070109534,0.0000023396717,4.966098e-7,0.0000024685496,0.00010221044,0.0000016153459,0.000029788791],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99995553,0.000008877724,0.000002693979,0.00001474231,0.0000057318184,0.0000123728305],"domain_scores_gemma":[0.9998734,0.00003386063,0.000032295502,0.00001225544,0.000022129054,0.000026032852],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014593547,0.00013259385,0.00015150712,0.0002044371,0.00020596007,0.0003342996,0.00018785152,0.00022178996,0.0005156627],"category_scores_gemma":[0.00042242088,0.000101622565,0.00016942967,0.00015950167,0.00015562373,0.00015312564,0.00020246505,0.0001948934,0.000051442315],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003825538,0.00018344862,0.85467404,0.000028100443,0.00011239897,0.00024351898,0.00021578373,0.11312175,0.023956187,0.00017124404,0.0005234074,0.00638757],"study_design_scores_gemma":[0.000019941725,0.0000804868,0.8832989,0.000003473445,0.000014211466,0.000040105453,0.00020154184,0.11462822,0.0014507575,0.00009338983,0.00016209083,0.000006970924],"about_ca_topic_score_codex":0.019793255,"about_ca_topic_score_gemma":0.022826284,"teacher_disagreement_score":0.019793255,"about_ca_system_score_codex":0.00046481923,"about_ca_system_score_gemma":0.00018546573,"threshold_uncertainty_score":0.039356053},"labels":[],"label_agreement":null},{"id":"W1913884562","doi":"10.1002/eco.1620","title":"Ecohydrological controls on water distribution and productivity of moss communities in western boreal peatlands, Canada","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":35,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Shell Canada","keywords":"Moss; Sphagnum; Peat; Environmental science; Dew; Water table; Hydrology (agriculture); Water content; Transpiration; Atmospheric sciences; Ecology; Photosynthesis; Botany; Groundwater; Geology; Biology; Geography; Condensation","score_opus":0.013180183627728381,"score_gpt":0.2124128434885735,"score_spread":0.19923265986084512,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1913884562","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99924135,0.000078493365,0.000030371146,0.000012570573,0.0000010448464,0.0000037967427,0.00025504155,0.0000051589136,0.00037208595],"genre_scores_gemma":[0.9993574,0.000051007813,0.00007822634,0.000006606239,5.6184575e-7,0.000002906666,0.00017509467,0.0000017639525,0.0003264218],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998313,0.000011676825,0.000007945721,0.000035858175,0.000034301742,0.00007877998],"domain_scores_gemma":[0.9994553,0.000030607902,0.000059392096,0.000010918508,0.00022400325,0.00021993183],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020084363,0.00016764938,0.00016446027,0.0013224953,0.0012205841,0.0006397936,0.00034223063,0.00013176515,0.0008022429],"category_scores_gemma":[0.00038639957,0.00014035773,0.000138121,0.00082645135,0.0006186544,0.00021132044,0.00038718904,0.000115623916,0.000099126824],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021492156,0.00004268537,0.9644283,0.000053876985,0.00005950163,0.00022286945,0.0022804458,0.00047001377,0.02271643,0.00023764705,0.00034607644,0.008927246],"study_design_scores_gemma":[0.0000012782662,0.000008139809,0.998691,0.000003267453,0.000002689477,0.000016793898,0.00070384983,0.00013131775,0.00015006072,0.000011586755,0.0002768641,0.0000030576114],"about_ca_topic_score_codex":0.9540579,"about_ca_topic_score_gemma":0.9887371,"teacher_disagreement_score":0.045942128,"about_ca_system_score_codex":0.008003911,"about_ca_system_score_gemma":0.0057554506,"threshold_uncertainty_score":0.09242535},"labels":[],"label_agreement":null},{"id":"W1920248683","doi":"10.1002/eco.1491","title":"Precipitation event distribution in Central Argentina: spatial and temporal patterns","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":41,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Secretaría de Ciencia y Técnica, Universidad de Buenos Aires; Universidad de Buenos Aires; Agencia Nacional de Promoción Científica y Tecnológica; Consejo Nacional de Investigaciones Científicas y Técnicas; International Development Research Centre; Inter-American Institute for Global Change Research; National Science Foundation","keywords":"Precipitation; Environmental science; Arid; Surface runoff; Spatial distribution; Atmospheric sciences; Transpiration; Climatology; Ecology; Mathematics; Statistics; Geography; Geology; Meteorology","score_opus":0.0036490431681718174,"score_gpt":0.1891304777832757,"score_spread":0.18548143461510389,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1920248683","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9972441,0.00021737817,0.00026599053,0.000044529086,0.0000042146366,0.000006293555,0.001342894,0.000021566706,0.0008531092],"genre_scores_gemma":[0.99844176,0.00012529953,0.00014200232,0.0000038925655,0.000007974559,0.00000861957,0.0010989484,0.0000041671656,0.0001673174],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99978083,0.00003761705,0.000019109957,0.00008891809,0.000035463814,0.000038115682],"domain_scores_gemma":[0.9989728,0.00021622902,0.0004805208,0.000052839066,0.00019368378,0.00008398245],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034797005,0.00013591161,0.00022837512,0.001133616,0.00014719213,0.000514454,0.00020230123,0.0001748395,0.0010126589],"category_scores_gemma":[0.0010601626,0.00011258665,0.00014042146,0.0017334,0.00023118222,0.00022224021,0.00029147422,0.00016631022,0.00012817406],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010873364,0.000024040392,0.9896735,0.000048568392,0.000054769793,0.000120771205,0.00040929747,0.00081463484,0.0014185706,0.00017633145,0.00047829436,0.0066725207],"study_design_scores_gemma":[0.0000017826069,0.0000072684625,0.9988417,0.0000038058188,0.0000039675488,0.000032805285,0.0000886548,0.000686625,0.00003968168,0.000020869633,0.00027075538,0.0000020479636],"about_ca_topic_score_codex":0.031630747,"about_ca_topic_score_gemma":0.03181138,"teacher_disagreement_score":0.031630747,"about_ca_system_score_codex":0.0004296053,"about_ca_system_score_gemma":0.00017567656,"threshold_uncertainty_score":0.06289327},"labels":[],"label_agreement":null},{"id":"W1929834080","doi":"10.1002/eco.1257","title":"Erosion of soils due to rainfall impact – an interpolation method","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil erosion and sediment transport","field":"Agricultural and Biological Sciences","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Simon Fraser University","funders":"","keywords":"Interpolation (computer graphics); Erosion; Simple (philosophy); Soil water; Environmental science; Applied mathematics; Hydrology (agriculture); Soil science; Geology; Mathematics; Geotechnical engineering; Computer science; Geomorphology","score_opus":0.026120022576207685,"score_gpt":0.30076555287302786,"score_spread":0.27464553029682015,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1929834080","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.10362078,0.00038523643,0.88846225,0.00009163659,0.000067714376,0.000041858213,0.00008617127,0.000412512,0.006831801],"genre_scores_gemma":[0.84540105,0.00068664405,0.14817579,0.000040458006,0.000074875796,0.000071352886,0.00016137413,0.00009450756,0.0052938936],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998553,0.00005333343,0.0000066470525,0.00002269686,0.00004597787,0.000016036922],"domain_scores_gemma":[0.9996495,0.0001687493,0.000042547006,0.000044351556,0.00007285439,0.000022045875],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006810607,0.00032398428,0.00043546967,0.00054560415,0.00022947368,0.00035999567,0.0009174773,0.00048122043,0.0019091343],"category_scores_gemma":[0.0014328667,0.00019346407,0.0005159594,0.0006786547,0.0004450784,0.0004876058,0.00049575727,0.00075484795,0.0003197805],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025388168,0.00013912814,0.0024888818,0.0001803893,0.000044002005,0.00044906492,0.00016869542,0.8308135,0.023702959,0.044569056,0.0008950607,0.096295334],"study_design_scores_gemma":[0.0000074292248,0.000021613238,0.00020912528,0.0000054659336,0.0000036188508,0.000037269256,0.000004775271,0.99653673,0.0009263543,0.0017145878,0.00052708987,0.000005987373],"about_ca_topic_score_codex":0.001888573,"about_ca_topic_score_gemma":0.0011709939,"teacher_disagreement_score":0.0019091343,"about_ca_system_score_codex":0.0003578248,"about_ca_system_score_gemma":0.00041460196,"threshold_uncertainty_score":0.0063866973},"labels":[],"label_agreement":null},{"id":"W1939164196","doi":"10.1002/eco.1501","title":"Integration of palaeohydrological proxies into a peatland model: a new tool for palaeoecological studies","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Université du Québec à Montréal","funders":"Canadian Foundation for Climate and Atmospheric Sciences; Academy of Finland; Université du Québec à Montréal; National Science Foundation","keywords":"Macrofossil; Peat; Ombrotrophic; Testate amoebae; Vegetation (pathology); Water table; Bog; Physical geography; Holocene; Precipitation; Environmental science; Geology; Paleoecology; Hydrology (agriculture); Ecology; Oceanography; Groundwater; Geography; Paleontology; Meteorology","score_opus":0.02408244822290159,"score_gpt":0.2821012584095944,"score_spread":0.2580188101866928,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1939164196","genre_codex":"empirical","genre_gemma":"methods","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"methods","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7464604,0.00025990687,0.24485932,0.0001786629,0.000057517565,0.00007306985,0.0018408807,0.002758226,0.0035121744],"genre_scores_gemma":[0.9410848,0.000117121555,0.057073522,0.000019037165,0.000018356288,0.00008157966,0.0006539734,0.0003399044,0.00061160943],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99989414,0.000045520534,0.000010853348,0.000022817263,0.000016719741,0.000009934206],"domain_scores_gemma":[0.99951684,0.00025980186,0.00004763016,0.000082190716,0.00005384244,0.000039619266],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007540157,0.00046641816,0.0004108836,0.00059831626,0.00025420147,0.00092235324,0.0006429989,0.0004996074,0.0014740995],"category_scores_gemma":[0.0019763468,0.00035258933,0.00049519195,0.0005022922,0.00025376197,0.00071803556,0.00051254773,0.000591063,0.00018824577],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000059865702,0.000086772605,0.012916664,0.000028774051,0.0001288574,0.00007557205,0.000049515955,0.9730611,0.0033107095,0.001982646,0.0002136291,0.008085906],"study_design_scores_gemma":[0.000009507604,0.000007848694,0.0017210837,0.0000029833127,0.0000069783364,0.0000063796774,0.000007936351,0.99697936,0.0004119994,0.00048469062,0.00035521362,0.000006059797],"about_ca_topic_score_codex":0.015383648,"about_ca_topic_score_gemma":0.0117043825,"teacher_disagreement_score":0.015383648,"about_ca_system_score_codex":0.00047071915,"about_ca_system_score_gemma":0.0005577777,"threshold_uncertainty_score":0.03058821},"labels":[],"label_agreement":null},{"id":"W1947341328","doi":"10.1002/eco.1486","title":"How do climate and forest changes affect long‐term streamflow dynamics? A case study in the upper reach of Poyang River basin","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":61,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"Nanchang Institute of Technology; Ministry of Water Resources; National Natural Science Foundation of China","keywords":"Streamflow; Reforestation; Deforestation (computer science); Environmental science; Climate change; Watershed; Hydrology (agriculture); Drainage basin; Structural basin; Climatology; Geography; Agroforestry; Geology","score_opus":0.008554577871584586,"score_gpt":0.22668282312415772,"score_spread":0.21812824525257313,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1947341328","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995945,0.00001764456,0.00009659367,0.000035194596,7.720142e-7,0.000004457101,0.000042073116,0.0000045918187,0.00020422452],"genre_scores_gemma":[0.99972993,0.000018068073,0.0001082031,0.0000052854234,0.000001642993,0.0000049092127,0.000046739948,0.0000010153569,0.00008417251],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997415,0.00009076309,0.00001804271,0.00005405661,0.000033296004,0.000062426385],"domain_scores_gemma":[0.99945205,0.0002710679,0.00009799506,0.00003747194,0.00005800713,0.00008343791],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038592322,0.00022183353,0.00026283404,0.00080187264,0.0007806233,0.0006760918,0.00039372683,0.0006957183,0.00074250466],"category_scores_gemma":[0.0009363832,0.0001792061,0.00044415292,0.0017417886,0.00068340206,0.0008050964,0.0005176688,0.00036753176,0.00003772765],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001688519,0.0004298287,0.9505153,0.000060791495,0.00018203417,0.011438075,0.002199872,0.019484509,0.0037112825,0.00069584255,0.00048471274,0.010628901],"study_design_scores_gemma":[0.000013950036,0.000098790704,0.9491302,0.000009887558,0.000058517657,0.00046916856,0.0026811736,0.04577958,0.0006288803,0.0004154087,0.0006852927,0.000029105668],"about_ca_topic_score_codex":0.046046834,"about_ca_topic_score_gemma":0.066646196,"teacher_disagreement_score":0.046046834,"about_ca_system_score_codex":0.0010114975,"about_ca_system_score_gemma":0.00057072926,"threshold_uncertainty_score":0.09155762},"labels":[],"label_agreement":null},{"id":"W1948866327","doi":"10.1002/eco.1477","title":"Evaluating the use of spatially varying versus bulk average 3D vegetation structural inputs to modelled evapotranspiration within heterogeneous land cover types","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Goddard Space Flight Center; Natural Environment Research Council; Sight Research UK","keywords":"Evapotranspiration; Environmental science; Land cover; Vegetation (pathology); Leaf area index; Water balance; Spatial variability; Hydrology (agriculture); Remote sensing; Eddy covariance; Land use; Ecosystem; Geology","score_opus":0.036066637088219625,"score_gpt":0.2607718553863075,"score_spread":0.22470521829808787,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1948866327","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99540246,0.00006132934,0.003426612,0.000032303284,0.000007810241,0.000016277816,0.00027071105,0.00014423279,0.0006381526],"genre_scores_gemma":[0.99808526,0.000015418147,0.001643255,0.0000071094564,0.0000015917245,0.000006501179,0.00013292105,0.000008772254,0.00009923145],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998684,0.000043664888,0.000009158987,0.000039287403,0.000021873155,0.000017553179],"domain_scores_gemma":[0.9994253,0.00036505854,0.00003772476,0.00003362257,0.00010066625,0.00003766864],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00062605785,0.0006955058,0.00029340445,0.00034168406,0.00024895088,0.0007035818,0.0006396671,0.0005309881,0.0006375384],"category_scores_gemma":[0.001236902,0.0002803975,0.0004570444,0.0003204177,0.00024087059,0.00042267508,0.00025522045,0.00029374144,0.00009808088],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020570525,0.00007904768,0.020479415,0.00002206467,0.00006603773,0.000029196364,0.000015597803,0.97031534,0.0027116777,0.000073718635,0.00006473439,0.0059375525],"study_design_scores_gemma":[0.000023332186,0.00007510126,0.013026191,0.000003915536,0.000027919514,0.000006698331,0.00001639814,0.9849946,0.0016875552,0.000044911005,0.00008462645,0.000008797858],"about_ca_topic_score_codex":0.110302575,"about_ca_topic_score_gemma":0.09030905,"teacher_disagreement_score":0.110302575,"about_ca_system_score_codex":0.0015319692,"about_ca_system_score_gemma":0.00058231864,"threshold_uncertainty_score":0.21932107},"labels":[{"model":"gemma","categories":[],"domain":null,"study_design":"simulation_or_modeling","genre":"empirical","about_ca_system":false,"about_ca_topic":false,"confidence":"low"},{"model":"gpt","categories":[],"domain":null,"study_design":"simulation_or_modeling","genre":"empirical","about_ca_system":false,"about_ca_topic":false,"confidence":"low"}],"label_agreement":"agree"},{"id":"W1954672397","doi":"10.1002/eco.1374","title":"Alteration of flow regimes caused by large‐scale forest disturbance: a case study from a large watershed in the interior of British Columbia, Canada","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Disturbance (geology); Watershed; Environmental science; Magnitude (astronomy); Hydrology (agriculture); Forest ecology; Ecosystem; Flow (mathematics); Ecology; Geology; Biology; Geomorphology","score_opus":0.003628486956453755,"score_gpt":0.18568688585616225,"score_spread":0.18205839889970848,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1954672397","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9984145,0.00013625703,0.000122012294,0.000078713674,0.0000020865314,0.000040936993,0.0002076081,0.000005774255,0.0009919894],"genre_scores_gemma":[0.99832004,0.00030959214,0.00045761152,0.00006431631,0.0000031408956,0.000017189079,0.00023736079,0.000004232015,0.0005865208],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9995047,0.000058741698,0.00002548276,0.000075486714,0.00015769195,0.00017793471],"domain_scores_gemma":[0.99917394,0.00014749686,0.00012761919,0.000044818546,0.00028237322,0.00022369238],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036289214,0.00039963308,0.00041352757,0.001272627,0.0044363886,0.0013040309,0.0011160191,0.0006343107,0.0008997966],"category_scores_gemma":[0.0010404895,0.00028073508,0.00024503167,0.004216154,0.0016048957,0.0002648823,0.0008088024,0.0007196619,0.00008290678],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001598619,0.0004499578,0.9216415,0.00019565446,0.00011397739,0.026059318,0.012197457,0.00299841,0.00430049,0.00036545657,0.0018134663,0.029704312],"study_design_scores_gemma":[0.000014318246,0.000051784977,0.97880703,0.0000495714,0.000043366286,0.0013367193,0.015336969,0.0020133865,0.00031802565,0.00009016735,0.0019063306,0.000032353375],"about_ca_topic_score_codex":0.98327893,"about_ca_topic_score_gemma":0.9947536,"teacher_disagreement_score":0.018061168,"about_ca_system_score_codex":0.018061168,"about_ca_system_score_gemma":0.013539898,"threshold_uncertainty_score":0.13104355},"labels":[],"label_agreement":null},{"id":"W1955556093","doi":"10.1002/eco.1493","title":"Hydrological feedbacks in northern peatlands","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":498,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Canadian Forest Service; Natural Resources Canada; McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Peat; Environmental science; Climate change; Ecosystem; Flooding (psychology); Ecohydrology; Ecosystem services; Biodiversity; Hydrology (agriculture); Ecology; Geology","score_opus":0.005280699755423637,"score_gpt":0.20131765851756228,"score_spread":0.19603695876213864,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1955556093","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9634791,0.009937811,0.007084908,0.0008451788,0.00005131487,0.000023125742,0.0003024422,0.00027662754,0.01799941],"genre_scores_gemma":[0.9968637,0.0018867095,0.0005661222,0.000035995978,0.000022856904,0.0000038468133,0.000038444905,0.000005635322,0.00057679537],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.9999256,0.00002243947,0.0000073859615,0.000010976874,0.00001962012,0.000013964324],"domain_scores_gemma":[0.9997228,0.00012082958,0.0000783556,0.00001123017,0.000042854495,0.000023898021],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038960757,0.00011047489,0.00016336887,0.0005424214,0.00022859233,0.00062402437,0.00013253254,0.00017410252,0.0011875322],"category_scores_gemma":[0.00070808653,0.00008703033,0.00012902865,0.00036912324,0.0003652213,0.00058112683,0.00042698256,0.00014816389,0.000060597402],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00037208208,0.00018032585,0.20211752,0.005042559,0.0005807601,0.0047228774,0.0055182814,0.10500073,0.18779227,0.08290567,0.0049356185,0.4008312],"study_design_scores_gemma":[0.000053491312,0.0001998088,0.76351875,0.00056930596,0.0003852348,0.0019825094,0.0032893282,0.035891883,0.019827718,0.10868602,0.06545689,0.00013910576],"about_ca_topic_score_codex":0.005627874,"about_ca_topic_score_gemma":0.0101941135,"teacher_disagreement_score":0.005627874,"about_ca_system_score_codex":0.00060976215,"about_ca_system_score_gemma":0.0004808435,"threshold_uncertainty_score":0.011190236},"labels":[],"label_agreement":null},{"id":"W1955588944","doi":"10.1002/eco.1429","title":"Reach‐scale movements of bull trout (<i>Salvelinus confluentus</i>) relative to hydropeaking operations in the Columbia River, Canada","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Golder Associates (Canada); University of British Columbia; Carleton University","funders":"BC Hydro; Natural Sciences and Engineering Research Council of Canada; Canada Research Chairs","keywords":"Trout; Odds; Electrofishing; Movement (music); Fishery; Environmental science; Hydrology (agriculture); Ecology; Geography; Biology; Geology; Abundance (ecology); Fish <Actinopterygii>; Physics","score_opus":0.004567782068256696,"score_gpt":0.1884694198405647,"score_spread":0.183901637772308,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1955588944","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99958044,0.000014046721,0.000022068058,0.0000075261432,4.224081e-7,0.000002947873,0.00010311706,0.0000020014502,0.00026727738],"genre_scores_gemma":[0.9993187,0.000022267315,0.000040525258,0.000006857982,5.0792397e-7,0.0000037452453,0.00019116387,0.000001374042,0.00041492085],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998578,0.000009738456,0.000005406875,0.00004405497,0.000042793872,0.000040220795],"domain_scores_gemma":[0.9994517,0.000049659568,0.00014331234,0.000018556953,0.0001475148,0.00018928907],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018767713,0.000120557066,0.00013980715,0.0005969395,0.0006573582,0.00045851697,0.00030434507,0.00016112045,0.0013058318],"category_scores_gemma":[0.00050208875,0.000134353,0.0001514157,0.00048269835,0.0006115259,0.00016148588,0.00038911542,0.0001921564,0.00013172356],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000922048,0.000022692417,0.9919567,0.000009772004,0.00003095787,0.00006839726,0.0005363929,0.00030192971,0.004848012,0.00004013531,0.00022896595,0.001863912],"study_design_scores_gemma":[6.84583e-7,0.0000110676765,0.99949586,0.0000010685324,0.0000023580785,0.0000063653433,0.00030982264,0.00007571589,0.000045058747,0.0000031719376,0.000047233007,0.0000016171405],"about_ca_topic_score_codex":0.844746,"about_ca_topic_score_gemma":0.95920026,"teacher_disagreement_score":0.155254,"about_ca_system_score_codex":0.0034469918,"about_ca_system_score_gemma":0.002021348,"threshold_uncertainty_score":0.31233662},"labels":[],"label_agreement":null},{"id":"W1987743387","doi":"10.1002/eco.93","title":"The role of flooding on inter‐annual and seasonal variability of lake water chemistry, phytoplankton diatom communities and macrophyte biomass in the Slave River Delta (Northwest Territories, Canada)","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":35,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Wilfrid Laurier University; Ministry of Environment; University of Waterloo","funders":"","keywords":"Macrophyte; Environmental science; Plankton; Hydrology (agriculture); Flooding (psychology); Biomass (ecology); Phytoplankton; Delta; Diatom; Limnology; Floodplain; Ecology; Aquatic plant; River delta; Nutrient; Geology; Biology","score_opus":0.0022289738441499105,"score_gpt":0.16735174377842835,"score_spread":0.16512276993427843,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1987743387","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99965787,0.0000248098,0.00001928603,0.000010035008,3.0490187e-7,0.0000017223992,0.00012307614,7.9925104e-7,0.00016199668],"genre_scores_gemma":[0.9996151,0.00002810791,0.000041942614,0.000006100918,4.0270436e-7,0.0000022627669,0.0001677255,7.010969e-7,0.00013761559],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998895,0.000014081932,0.0000060740317,0.000024567616,0.000033162,0.00003258062],"domain_scores_gemma":[0.9995192,0.000065589644,0.000099103345,0.000020454154,0.00017753101,0.000118041535],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00024327924,0.00010341366,0.00015786137,0.00035970355,0.0007740806,0.00048519118,0.00024636928,0.00014672396,0.00041836457],"category_scores_gemma":[0.00053361244,0.00012958806,0.00012659343,0.00059272663,0.00052689674,0.00019551003,0.00036641103,0.00013667604,0.000036423542],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006744641,0.000009310894,0.99284875,0.00000828275,0.000025960488,0.000065725806,0.0008326142,0.0001978647,0.0034794512,0.00002909531,0.00009049546,0.0023449857],"study_design_scores_gemma":[5.9707037e-7,0.0000037833086,0.99947125,0.0000011015927,0.0000026243429,0.000005862839,0.00028275934,0.00010692818,0.0000609277,0.0000034262207,0.000059561396,0.0000012112309],"about_ca_topic_score_codex":0.8742072,"about_ca_topic_score_gemma":0.9544661,"teacher_disagreement_score":0.1257928,"about_ca_system_score_codex":0.0036370214,"about_ca_system_score_gemma":0.0035023133,"threshold_uncertainty_score":0.2530672},"labels":[],"label_agreement":null},{"id":"W2000264121","doi":"10.1002/eco.226","title":"Timescales of hydrolimnological change in floodplain lakes of the Peace‐Athabasca Delta, northern Alberta, Canada","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Wilfrid Laurier University; University of Waterloo","funders":"","keywords":"Hydrology (agriculture); Floodplain; Environmental science; Flooding (psychology); Dissolved organic carbon; Dissolved silica; Nutrient; Delta; Drainage basin; Limnology; Water column; Sediment; Oceanography; Geology; Ecology; Geography; Geomorphology; Chemistry","score_opus":0.01239467571630097,"score_gpt":0.1779271132677104,"score_spread":0.16553243755140945,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2000264121","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99846005,0.0000778013,0.00004399682,0.0000652138,0.0000022283866,0.000008468241,0.00057841535,0.000007242779,0.0007565709],"genre_scores_gemma":[0.9990565,0.000048653117,0.00006547274,0.000017945109,0.0000017333194,0.000006685872,0.00040410916,0.0000013220056,0.0003975016],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998617,0.000009697586,0.000005984483,0.00002619687,0.000046909114,0.000049389604],"domain_scores_gemma":[0.9994431,0.000036672267,0.00008855553,0.000013853128,0.0002857779,0.00013195981],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025773523,0.00015470553,0.00017651373,0.00092477846,0.0014337582,0.0008407163,0.00040010616,0.0002671324,0.00088552304],"category_scores_gemma":[0.000790213,0.00012865308,0.00015430363,0.0012545043,0.0005413283,0.00026226082,0.00045520588,0.00023091522,0.00008545221],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021152684,0.00003831719,0.98696613,0.000022905784,0.00004911216,0.00014504623,0.0013569728,0.0006204142,0.0046553575,0.00013460654,0.0006558776,0.005143795],"study_design_scores_gemma":[0.000001824999,0.000004583726,0.9990011,0.0000016876098,0.0000034856184,0.000008148263,0.00045993566,0.00020689674,0.00007531554,0.00000963468,0.000224897,0.0000025950912],"about_ca_topic_score_codex":0.95532256,"about_ca_topic_score_gemma":0.97708726,"teacher_disagreement_score":0.044677436,"about_ca_system_score_codex":0.0092622265,"about_ca_system_score_gemma":0.0044762245,"threshold_uncertainty_score":0.08988106},"labels":[],"label_agreement":null},{"id":"W2004252834","doi":"10.1002/eco.141","title":"Effects of lateral hydrological processes on photosynthesis and evapotranspiration in a boreal ecosystem","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":31,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Evapotranspiration; Environmental science; Ecohydrology; Primary production; Ecosystem; Hydrology (agriculture); Boreal; Atmospheric sciences; Ecology; Geology","score_opus":0.0030478881702556125,"score_gpt":0.17967353200212144,"score_spread":0.17662564383186583,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2004252834","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99955326,0.000013419597,0.00021501271,0.000014930064,0.0000017635446,0.0000028291122,0.000046075107,0.000010733742,0.00014189466],"genre_scores_gemma":[0.9997321,0.000008872058,0.00018950926,0.000004272335,8.260434e-7,0.0000030112715,0.00003771623,0.0000011794142,0.000022530476],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.99985695,0.0000462875,0.000015337424,0.000036152782,0.000016896156,0.000028298218],"domain_scores_gemma":[0.99953866,0.00023919395,0.00007821426,0.000039733837,0.000046461755,0.00005774423],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00048133006,0.00031880275,0.0001896295,0.00019867593,0.00032831152,0.00047286908,0.00037188374,0.0003654773,0.00041475493],"category_scores_gemma":[0.0007902831,0.00016190634,0.0004290559,0.00018184239,0.00043435424,0.0005975136,0.00032128548,0.00025148297,0.00003564272],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.001108947,0.0006554538,0.30687162,0.00013144227,0.00020392417,0.0003941714,0.00023188301,0.58706707,0.08892063,0.0013669276,0.00037590743,0.012672109],"study_design_scores_gemma":[0.0001345249,0.00068346056,0.31657162,0.000008890472,0.000064306376,0.000098725,0.00018001387,0.67496717,0.0060843565,0.00081389357,0.000335,0.00005804535],"about_ca_topic_score_codex":0.017183706,"about_ca_topic_score_gemma":0.0111111,"teacher_disagreement_score":0.017183706,"about_ca_system_score_codex":0.0009358663,"about_ca_system_score_gemma":0.00038404524,"threshold_uncertainty_score":0.03416741},"labels":[],"label_agreement":null},{"id":"W2007779368","doi":"10.1002/eco.149","title":"Surface and groundwater dynamics in the sedimentary plains of the Western Pampas (Argentina)","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Flood Risk Assessment and Management","field":"Environmental Science","cited_by":77,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Comisión Nacional de Actividades Espaciales; International Development Research Centre; Inter-American Institute for Global Change Research; National Science Foundation","keywords":"Groundwater; Water table; Surface water; Hydrology (agriculture); Water storage; Environmental science; Geology; Water cycle; Water level; Flooding (psychology); Geomorphology; Geography; Ecology","score_opus":0.005218664499116716,"score_gpt":0.21519510256688976,"score_spread":0.20997643806777305,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2007779368","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9992938,0.00003242604,0.000048275837,0.000020652666,9.101335e-7,0.0000032116727,0.00021015192,0.0000063624902,0.00038422525],"genre_scores_gemma":[0.99952495,0.000032198303,0.00012129954,0.000004361504,0.0000020103587,0.0000056740723,0.00020932853,9.752335e-7,0.00009918788],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99992764,0.000014554624,0.000005492237,0.000022503078,0.000012044524,0.00001777992],"domain_scores_gemma":[0.99984205,0.000024099636,0.000069876136,0.000009259464,0.000028595208,0.000026133124],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012799745,0.00021707678,0.00016984309,0.0007155815,0.00024995048,0.0003676106,0.00018953282,0.0001875494,0.0007109275],"category_scores_gemma":[0.0003435744,0.00009970729,0.00011718186,0.0008064697,0.00024924846,0.00020551379,0.00035206316,0.00012198472,0.000073273215],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021762685,0.0000603383,0.97277087,0.00006189301,0.000055910125,0.0005727485,0.0011440412,0.0029529165,0.008508947,0.00015892324,0.0003781777,0.013117554],"study_design_scores_gemma":[0.0000032012294,0.000016848495,0.997849,0.0000041399535,0.0000054755847,0.00004420054,0.00018044497,0.0015635962,0.00010521478,0.00001640943,0.0002092248,0.000002357433],"about_ca_topic_score_codex":0.05596905,"about_ca_topic_score_gemma":0.06269121,"teacher_disagreement_score":0.05596905,"about_ca_system_score_codex":0.0005840294,"about_ca_system_score_gemma":0.00021425699,"threshold_uncertainty_score":0.11128658},"labels":[],"label_agreement":null},{"id":"W2014455113","doi":"10.1002/eco.68","title":"Moisture controls on CO<sub>2</sub> exchange in a <i>Sphagnum</i>‐dominated peatland: results from an extreme drought field experiment","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":67,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; University of Calgary","funders":"","keywords":"Sphagnum; Peat; Environmental science; Water content; Bog; Ditch; Hydrology (agriculture); Ecosystem respiration; Water table; Moss; Carbon sink; Ecosystem; Soil science; Eddy covariance; Geology; Ecology; Groundwater; Biology","score_opus":0.010977454716161373,"score_gpt":0.2412305854013048,"score_spread":0.23025313068514341,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2014455113","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99983346,0.000008712083,0.000058232225,0.0000030170904,0.0000013741861,0.000007228105,0.00004792602,0.0000030816009,0.00003680244],"genre_scores_gemma":[0.998988,0.000028620221,0.00034991352,0.000027459617,0.0000031254428,0.000043362506,0.00022488975,0.000007775328,0.00032686428],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999038,0.000019309438,0.000008039261,0.00003040833,0.000010654618,0.000027881108],"domain_scores_gemma":[0.9995881,0.00008500237,0.00007881943,0.000036642272,0.00003390088,0.00017767568],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030729306,0.00033810528,0.00043089583,0.00018264835,0.00032190696,0.0002803764,0.00029682321,0.00033741843,0.0005509767],"category_scores_gemma":[0.00019220973,0.00021450473,0.00027037112,0.00013903846,0.0004162996,0.00027154837,0.00023491577,0.00061122293,0.00007587278],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.006007141,0.0015669025,0.011319773,0.000038458056,0.000047409627,0.000063659216,0.000110192545,0.00042276038,0.9784218,0.000033310807,0.000053181913,0.0019154629],"study_design_scores_gemma":[0.00070898037,0.019563837,0.6176815,0.00001932811,0.0002024494,0.00018457256,0.00044350358,0.0073245997,0.35214296,0.00020270963,0.0014693975,0.000056058678],"about_ca_topic_score_codex":0.0061819535,"about_ca_topic_score_gemma":0.006867819,"teacher_disagreement_score":0.0061819535,"about_ca_system_score_codex":0.00040393008,"about_ca_system_score_gemma":0.00025309072,"threshold_uncertainty_score":0.012291968},"labels":[],"label_agreement":null},{"id":"W2017747919","doi":"10.1002/eco.167","title":"Ecosystem level assessment of environmentally based flow restrictions for maintaining ecosystem integrity: a comparison of a modified peaking versus unaltered river","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":65,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"St. Lawrence River Institute of Environmental Sciences; Trent University; Ministry of Natural Resources and Forestry; University of Waterloo; Fisheries and Oceans Canada","funders":"National Water Research Institute","keywords":"Environmental science; Abundance (ecology); Ecosystem; Food web; Biomass (ecology); Ecology; Invertebrate; Ecosystem engineer; River ecosystem; Aquatic ecosystem; Hydrology (agriculture); Fishery; Biology; Geology","score_opus":0.05001465949974933,"score_gpt":0.307384419446497,"score_spread":0.2573697599467477,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2017747919","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99912745,0.000024537821,0.00043201132,0.000007444299,0.0000010047446,0.000018078585,0.000040921284,0.000006502372,0.00034201788],"genre_scores_gemma":[0.99832565,0.00002046924,0.0014647107,0.000006536307,0.0000012368195,0.000013116978,0.000060613667,0.0000012045789,0.000106458545],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99952865,0.00015755682,0.000035972214,0.00007412495,0.00016112192,0.000042624302],"domain_scores_gemma":[0.99922836,0.00018462818,0.0002463528,0.000054296634,0.00018700094,0.000099401586],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008877961,0.0001626531,0.00022555566,0.0006830856,0.00029332863,0.0008950215,0.00039161724,0.00023960324,0.00043195114],"category_scores_gemma":[0.0012513263,0.00008487771,0.0003167472,0.0005300804,0.0003799941,0.00043632337,0.00038171432,0.00023869141,0.00003308187],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.001357868,0.00072425907,0.8829141,0.00015776312,0.00035417947,0.00021850996,0.00046502275,0.023790201,0.0507412,0.00058168767,0.0001787114,0.038516447],"study_design_scores_gemma":[0.00002382723,0.002045975,0.97046196,0.000013496038,0.0001442272,0.000045464938,0.00051496027,0.01981033,0.0062909466,0.00019229185,0.00043502412,0.000021636672],"about_ca_topic_score_codex":0.0119137475,"about_ca_topic_score_gemma":0.025080498,"teacher_disagreement_score":0.0119137475,"about_ca_system_score_codex":0.0009385031,"about_ca_system_score_gemma":0.0005994116,"threshold_uncertainty_score":0.023688793},"labels":[],"label_agreement":null},{"id":"W2026055803","doi":"10.1002/eco.244","title":"Contributions of streamflow variability, concentration–discharge shifts and forested wetlands to terrestrial–aquatic solute export in Precambrian Shield headwater catchments","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Carleton University","funders":"","keywords":"Wetland; Biogeochemical cycle; Environmental science; Hydrology (agriculture); Surface runoff; Flux (metallurgy); Watershed; Terrestrial ecosystem; Carbon cycle; Streamflow; Drainage basin; Ecology; Ecosystem; Geology","score_opus":0.013226920598503862,"score_gpt":0.23102731900151896,"score_spread":0.2178003984030151,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2026055803","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998827,0.000011518101,0.000015897678,0.0000033774493,1.6115246e-7,3.9505423e-7,0.000036276735,0.0000017120407,0.000047951697],"genre_scores_gemma":[0.9998037,0.000011984359,0.000020489131,0.0000013160366,5.79965e-7,7.9259723e-7,0.00011489465,0.0000010431081,0.00004516686],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999355,0.00001129288,0.0000061744886,0.000014008947,0.0000126742425,0.00002030345],"domain_scores_gemma":[0.99980503,0.00005546981,0.00005998986,0.000020252459,0.00003078143,0.000028579017],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017583223,0.00014932948,0.00018060827,0.0005649899,0.00020121165,0.00041950692,0.00011994715,0.00011668156,0.0005035803],"category_scores_gemma":[0.0005983761,0.00011783535,0.00025708682,0.00048856146,0.00032593135,0.00016849571,0.00039493802,0.000103830054,0.00005547766],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000093967275,0.000010496127,0.98990625,0.000012218829,0.000058287053,0.00011858205,0.00031623687,0.0013414156,0.004729875,0.00008231017,0.00004213481,0.0032882304],"study_design_scores_gemma":[0.0000011468132,0.0000063543794,0.9985815,0.0000012635933,0.0000054393054,0.000016172282,0.000055010903,0.0011434673,0.00013216179,0.000011356993,0.000044791417,0.0000012717258],"about_ca_topic_score_codex":0.045579158,"about_ca_topic_score_gemma":0.05144791,"teacher_disagreement_score":0.045579158,"about_ca_system_score_codex":0.00047343914,"about_ca_system_score_gemma":0.0003338865,"threshold_uncertainty_score":0.09062773},"labels":[],"label_agreement":null},{"id":"W2028669113","doi":"10.1002/eco.77","title":"Ericaceous shrubs on abandoned block‐cut peatlands: implications for soil water availability and <i>Sphagnum</i> restoration","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Sphagnum; Environmental science; Transpiration; Peat; Interception; Bog; Hydrology (agriculture); Shrub; Water table; Soil water; Litter; Vegetation (pathology); Soil horizon; Agronomy; Soil science; Groundwater; Geology; Ecology; Botany; Biology","score_opus":0.009425023307403635,"score_gpt":0.2314911097214308,"score_spread":0.22206608641402717,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2028669113","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996878,0.00002794634,0.000017432241,0.000004548374,7.042533e-7,0.0000026801545,0.000017849992,0.00000188284,0.00023914],"genre_scores_gemma":[0.999759,0.000021974125,0.000039136263,0.00000375426,0.0000010666142,0.000001518653,0.000032005904,7.182179e-7,0.00014070261],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999124,0.000016134178,0.0000049459345,0.000017331051,0.000013708892,0.000035574983],"domain_scores_gemma":[0.99973077,0.000026912465,0.000085649335,0.00000869275,0.00004946774,0.00009849297],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00024439796,0.00021960428,0.00021519262,0.0003452162,0.00034603465,0.00039680777,0.00021005787,0.00013353367,0.0009658598],"category_scores_gemma":[0.0002705403,0.00007898598,0.00013221761,0.00018944102,0.00031652895,0.0001861853,0.00026097326,0.00014021112,0.00013599457],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0013005962,0.00049084896,0.80832183,0.00014336559,0.00011521351,0.001381961,0.0011848914,0.00084862957,0.1557362,0.00016885891,0.00021880954,0.030088726],"study_design_scores_gemma":[0.0000034286907,0.00012396125,0.9979613,0.000006263711,0.0000075097328,0.00009679647,0.00041943567,0.00019832031,0.0009654682,0.000021824859,0.00019290471,0.0000027501924],"about_ca_topic_score_codex":0.014434985,"about_ca_topic_score_gemma":0.048369277,"teacher_disagreement_score":0.014434985,"about_ca_system_score_codex":0.0005282062,"about_ca_system_score_gemma":0.00047506142,"threshold_uncertainty_score":0.028701961},"labels":[],"label_agreement":null},{"id":"W2029478739","doi":"10.1002/eco.206","title":"Climate change, glacier melting and streamflow in the Niyang River Basin, Southeast Tibet, China","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Cryospheric studies and observations","field":"Earth and Planetary Sciences","cited_by":50,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Streamflow; Climate change; Precipitation; Environmental science; Glacier; Drainage basin; Global warming; Context (archaeology); Climatology; Hydrology (agriculture); Geology; Physical geography; Geography; Meteorology","score_opus":0.03481261429546829,"score_gpt":0.20652812771494647,"score_spread":0.1717155134194782,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2029478739","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994999,0.00003362938,0.00012258161,0.00004267054,0.0000020796526,0.000002821896,0.00009992329,0.000006259283,0.00019011195],"genre_scores_gemma":[0.99972445,0.000025803864,0.000070473536,0.000005124373,0.0000014932984,0.0000034617801,0.00011224691,6.63287e-7,0.000056277033],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999882,0.000041575036,0.000012927843,0.000022281714,0.000016654192,0.000024585364],"domain_scores_gemma":[0.99977845,0.00006524371,0.00004388149,0.00001239895,0.000052325642,0.000047757992],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004382461,0.00023195276,0.0001863652,0.00047518365,0.0004838267,0.0005275928,0.00029651434,0.00026642223,0.00068299705],"category_scores_gemma":[0.0005497021,0.00011332987,0.00031926294,0.0010883906,0.00029757322,0.00037759077,0.00026859753,0.00016032034,0.00003200915],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000088689616,0.000084240426,0.94735044,0.000064651,0.00015964893,0.0005282908,0.0003092742,0.04054263,0.0024327475,0.00034502018,0.00032680592,0.007767475],"study_design_scores_gemma":[0.000026168556,0.000065220025,0.90926343,0.000013970305,0.000046192734,0.000051347855,0.0006115996,0.08877955,0.0003678994,0.00031102184,0.00044771022,0.000015950967],"about_ca_topic_score_codex":0.100433335,"about_ca_topic_score_gemma":0.10948914,"teacher_disagreement_score":0.100433335,"about_ca_system_score_codex":0.0013382374,"about_ca_system_score_gemma":0.0011271487,"threshold_uncertainty_score":0.19969755},"labels":[],"label_agreement":null},{"id":"W2034588804","doi":"10.1002/eco.74","title":"Evapotranspiration in intermediate‐aged and mature fens and upland black spruce boreal forests","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":29,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Manitoba","funders":"University of British Columbia; Canadian Foundation for Climate and Atmospheric Sciences; National Science Foundation","keywords":"Evapotranspiration; Environmental science; Taiga; Sensible heat; Hydrology (agriculture); Boreal; Black spruce; Growing season; Precipitation; Atmospheric sciences; Ecology; Forestry; Geography; Geology","score_opus":0.0036787917232245664,"score_gpt":0.19304684878018605,"score_spread":0.18936805705696147,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2034588804","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99942845,0.000086594824,0.000018181683,0.0000042295555,9.778671e-7,0.0000011667352,0.00018104973,0.0000016193277,0.00027776725],"genre_scores_gemma":[0.9995809,0.000018384917,0.0000422267,0.0000035133771,9.1123934e-7,9.939748e-7,0.00025026975,9.799787e-7,0.00010179803],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998908,0.000010333601,0.0000061565615,0.000030991418,0.00002276372,0.000038876355],"domain_scores_gemma":[0.9996358,0.00003396253,0.00010785275,0.000015718071,0.000087172135,0.00011940943],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032718165,0.00018255415,0.00017933857,0.00052217656,0.00045207533,0.00045743975,0.00030778325,0.00012613722,0.0005109512],"category_scores_gemma":[0.00044245546,0.00007633339,0.000147852,0.00043392074,0.00024985254,0.0002734697,0.00017731349,0.00014762196,0.00006980184],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00026200045,0.000026707407,0.99333847,0.00001198162,0.00002806075,0.000057038265,0.0002887915,0.00023673718,0.002886131,0.0000508021,0.00009592955,0.0027173755],"study_design_scores_gemma":[8.5117847e-7,0.0000062841114,0.99973553,7.1209297e-7,0.0000012343835,0.000010333868,0.00007059635,0.000063027925,0.00004433376,0.0000055924515,0.00006080541,8.0262674e-7],"about_ca_topic_score_codex":0.35362402,"about_ca_topic_score_gemma":0.64193946,"teacher_disagreement_score":0.35362402,"about_ca_system_score_codex":0.0014795053,"about_ca_system_score_gemma":0.0005433316,"threshold_uncertainty_score":0.7031314},"labels":[],"label_agreement":null},{"id":"W2034621956","doi":"10.1002/eco.227","title":"Identifying ecohydrological patterns in natural forested wetlands useful to restoration design","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Nipissing University","funders":"","keywords":"Wetland; Environmental science; Hydrology (agriculture); Natural (archaeology); Environmental resource management; Geography; Ecology; Geology","score_opus":0.044802274440973795,"score_gpt":0.25038471045121696,"score_spread":0.20558243601024317,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2034621956","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99860173,0.000020659847,0.0007950381,0.00001052959,5.0101715e-7,0.000008778777,0.00006838741,0.000009878173,0.00048444662],"genre_scores_gemma":[0.998701,0.000013593143,0.0010559253,0.0000026548514,6.013543e-7,0.0000064281876,0.00007598273,0.0000023391565,0.00014155642],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99981195,0.00007010612,0.000013230399,0.00003831857,0.000041354087,0.000025029427],"domain_scores_gemma":[0.9989157,0.00028288853,0.00039969137,0.000054102587,0.00024297791,0.000104743856],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00038406224,0.00008680654,0.00009441579,0.0008797864,0.00024587463,0.000494998,0.00013321039,0.00008987881,0.0005817112],"category_scores_gemma":[0.0012535875,0.00006260468,0.00007014562,0.0005016991,0.0002998452,0.00022810049,0.0002924192,0.000073252675,0.00006827543],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006787474,0.00007365977,0.9448908,0.00004512653,0.000025047377,0.00007766308,0.0010118927,0.0021022868,0.017205726,0.00013969933,0.00028543486,0.03407483],"study_design_scores_gemma":[7.35173e-7,0.000016031101,0.9968022,0.0000041642206,0.0000031265106,0.000015997059,0.00050156616,0.0016071498,0.00078372256,0.000050360963,0.0002117037,0.000003167274],"about_ca_topic_score_codex":0.017963424,"about_ca_topic_score_gemma":0.07531834,"teacher_disagreement_score":0.017963424,"about_ca_system_score_codex":0.0003615397,"about_ca_system_score_gemma":0.00049241463,"threshold_uncertainty_score":0.035717726},"labels":[],"label_agreement":null},{"id":"W2041654836","doi":"10.1002/eco.218","title":"Forest ecohydrological processes in a changing environment","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Okanagan University College; University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Environmental science; Watershed; Ecohydrology; Climate change; Environmental resource management; Hydrology (agriculture); Computer science; Ecosystem; Ecology; Geology","score_opus":0.012823550715406093,"score_gpt":0.17868003876961894,"score_spread":0.16585648805421285,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2041654836","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.900555,0.00894776,0.014757153,0.012648399,0.0006888978,0.000046877984,0.0013399227,0.0003949083,0.060621046],"genre_scores_gemma":[0.9955449,0.0012925912,0.00056944625,0.00017745438,0.00014934709,0.000004360062,0.0001382198,0.000024330606,0.0020992963],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.9998586,0.000023238172,0.000005330592,0.000034567693,0.00004654636,0.000031558822],"domain_scores_gemma":[0.9997012,0.0000822508,0.00007203963,0.000019394063,0.00006885636,0.00005629145],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00024394863,0.00010818132,0.00021073474,0.00048153196,0.00039208756,0.0016392758,0.00026445233,0.0005053578,0.004172306],"category_scores_gemma":[0.00080392347,0.000097993936,0.00018735189,0.0008111031,0.0007191854,0.00096604764,0.0006729971,0.0004874706,0.00029728882],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00032979663,0.0004569307,0.20931125,0.00078034244,0.0002904798,0.002769277,0.0032115383,0.1635836,0.0716138,0.21111177,0.10045664,0.2360846],"study_design_scores_gemma":[0.000037050064,0.00008577713,0.5726018,0.00006611934,0.00005681993,0.00045625825,0.0021102198,0.098073766,0.006385903,0.20155518,0.11846169,0.000109351284],"about_ca_topic_score_codex":0.0077170585,"about_ca_topic_score_gemma":0.0059355577,"teacher_disagreement_score":0.0077170585,"about_ca_system_score_codex":0.00086656545,"about_ca_system_score_gemma":0.0003362303,"threshold_uncertainty_score":0.015344322},"labels":[],"label_agreement":null},{"id":"W2046622925","doi":"10.1002/eco.171","title":"The response of carbon dioxide exchange to manipulations of <i>Sphagnum</i> water content in an ombrotrophic bog","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":33,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Carleton University; University of Lethbridge","funders":"","keywords":"Sphagnum; Ombrotrophic; Bog; Peat; Moss; Environmental science; Temperate climate; Botany; Ecology; Biology","score_opus":0.0161609637923535,"score_gpt":0.23292367699181105,"score_spread":0.21676271319945756,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2046622925","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.999828,0.000014630698,0.000058952894,0.0000044186845,0.000001019216,0.0000024000612,0.000021465328,0.000005002997,0.000063999716],"genre_scores_gemma":[0.9995117,0.000016757043,0.00016580032,0.00001440632,0.0000010043473,0.000009101275,0.000042178213,0.0000049016953,0.00023413745],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999442,0.000009489023,0.0000030370184,0.000017680182,0.000006959632,0.00001869347],"domain_scores_gemma":[0.9998215,0.00003816539,0.00004073307,0.000012657542,0.000013789252,0.0000731171],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000093154995,0.00020043689,0.00018441599,0.00009143792,0.00020514865,0.00026593043,0.00016108081,0.0001643496,0.00049165107],"category_scores_gemma":[0.00013832029,0.00013654942,0.000114325194,0.00004998793,0.00021535846,0.0001161743,0.00019334604,0.00034229344,0.0000659053],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006268586,0.00008926689,0.0047436114,0.000014546815,0.000012586518,0.000018598279,0.0000490655,0.00013094256,0.9934388,0.000010156397,0.000019723668,0.00084591145],"study_design_scores_gemma":[0.000059245685,0.001872432,0.62067527,0.0000080756945,0.00005021551,0.00009055987,0.0003380155,0.0049084113,0.3710281,0.00009072351,0.0008562593,0.000022664748],"about_ca_topic_score_codex":0.005590871,"about_ca_topic_score_gemma":0.008272857,"teacher_disagreement_score":0.005590871,"about_ca_system_score_codex":0.00040297356,"about_ca_system_score_gemma":0.00019799042,"threshold_uncertainty_score":0.011116624},"labels":[],"label_agreement":null},{"id":"W2050689980","doi":"10.1002/eco.10","title":"Precipitation control over inorganic nitrogen import–export budgets across watersheds: a synthesis of long‐term ecological research","year":2008,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":33,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"U.S. Forest Service; Vanderbilt University","keywords":"Precipitation; Environmental science; Temperate climate; Watershed; Boreal; Deciduous; STREAMS; Atmospheric sciences; Hydrology (agriculture); Ecology; Geography; Biology","score_opus":0.02106637542169045,"score_gpt":0.2807492546525359,"score_spread":0.2596828792308455,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2050689980","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9832713,0.013910253,0.0010083764,0.000118489144,0.000013202814,0.000008942507,0.00047787456,0.00002261092,0.0011688209],"genre_scores_gemma":[0.99438936,0.004012484,0.0006897342,0.000062027495,0.000037311147,0.000013184519,0.0005444728,0.000012642192,0.00023871452],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99969566,0.000048541966,0.00003414116,0.0001497931,0.00004277571,0.000029221483],"domain_scores_gemma":[0.99772173,0.0009917928,0.0005818812,0.00018743351,0.00039686603,0.000120260425],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0015086965,0.00021629107,0.00045472337,0.0008407992,0.00038402856,0.0010581813,0.00044445027,0.00027690956,0.0006864484],"category_scores_gemma":[0.0016782273,0.0002568472,0.0004613129,0.0017745941,0.0007133128,0.0010486156,0.00066401274,0.00024696076,0.00005709136],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00030505742,0.00011995539,0.90539503,0.00083492644,0.0010082917,0.0001333806,0.00094877376,0.0020153443,0.018251225,0.0002498145,0.00028137103,0.070456855],"study_design_scores_gemma":[0.000001662824,0.000022740134,0.9986719,0.000019526702,0.000056144487,0.000017577391,0.000098140226,0.00035452237,0.00027582626,0.00006439312,0.0004120391,0.000005613204],"about_ca_topic_score_codex":0.019168708,"about_ca_topic_score_gemma":0.027134664,"teacher_disagreement_score":0.019168708,"about_ca_system_score_codex":0.0005450667,"about_ca_system_score_gemma":0.0005527644,"threshold_uncertainty_score":0.03811425},"labels":[],"label_agreement":null},{"id":"W2060835324","doi":"10.1002/eco.230","title":"The DigiBog peatland development model 1: rationale, conceptual model, and hydrological basis","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":108,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Queen Mary University of London","keywords":"Peat; Ecohydrology; Environmental science; Hydrology (agriculture); Water table; Groundwater; Ecology; Geology; Ecosystem","score_opus":0.03105050307792799,"score_gpt":0.21091250432478686,"score_spread":0.17986200124685886,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2060835324","genre_codex":"methods","genre_gemma":"methods","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"methods","genre_consensus":"methods","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.30105972,0.009262396,0.56117916,0.008162823,0.00032450716,0.0010592833,0.015114268,0.0027157245,0.10112208],"genre_scores_gemma":[0.82548416,0.0053019193,0.156554,0.0005814373,0.00007595133,0.0012960116,0.003123363,0.00021418248,0.0073689115],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999884,0.000048882554,0.0000072162716,0.000021074993,0.00002672399,0.000012075834],"domain_scores_gemma":[0.99976236,0.00012255232,0.000025950794,0.000011192892,0.00005443866,0.000023416389],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00054916186,0.00061658915,0.00045266826,0.0009529037,0.00027707778,0.0011646089,0.0016089106,0.00062929513,0.0016810537],"category_scores_gemma":[0.0009764243,0.00036547275,0.00037423347,0.0008730037,0.00053255836,0.00070831564,0.0007860748,0.00055132003,0.00031142178],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006461403,0.000040428724,0.0026564526,0.00032132427,0.000034783072,0.00015822676,0.00004895026,0.91473037,0.0007298702,0.057103943,0.0028909096,0.021220123],"study_design_scores_gemma":[0.000079193305,0.00005201669,0.00069712615,0.00014296183,0.000040933945,0.000033090317,0.00006003815,0.9456432,0.00071751693,0.029774377,0.022737185,0.000022356657],"about_ca_topic_score_codex":0.016483575,"about_ca_topic_score_gemma":0.018001663,"teacher_disagreement_score":0.016483575,"about_ca_system_score_codex":0.0016291164,"about_ca_system_score_gemma":0.0020059138,"threshold_uncertainty_score":0.032775283},"labels":[],"label_agreement":null},{"id":"W2065535335","doi":"10.1002/eco.202","title":"Hydrological and biogeochemical controls on plant species distribution within calcareous fens","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western University; McMaster University","funders":"","keywords":"Environmental science; Species richness; Calcareous; Peat; Ecology; Biogeochemical cycle; Wetland; Ecosystem; Nutrient; Species distribution; Hydrology (agriculture); Biology; Botany; Geology","score_opus":0.016938160404881483,"score_gpt":0.19341648559101068,"score_spread":0.17647832518612921,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2065535335","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997613,0.000020941226,0.000066837245,0.00000291041,1.3065663e-7,9.3172423e-7,0.000017264761,0.0000018997966,0.00012773658],"genre_scores_gemma":[0.9998548,0.000008059184,0.000071605646,0.0000013551338,4.5023717e-7,8.5769415e-7,0.00003052195,7.165297e-7,0.000031620642],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997657,0.000056002074,0.000012129433,0.000064620916,0.000040084185,0.0000614383],"domain_scores_gemma":[0.99935716,0.00021186592,0.00017963926,0.00003675307,0.00010310337,0.0001114842],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004770133,0.00012916591,0.0002389052,0.0010824142,0.000500035,0.0005305396,0.0002651226,0.00017303885,0.00049581635],"category_scores_gemma":[0.00086671946,0.00010933037,0.00014332586,0.0005890757,0.0008166607,0.0002771761,0.00046509822,0.000092238966,0.000057031015],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028746435,0.000059483755,0.9467753,0.000043304626,0.00007309054,0.00017501433,0.00102119,0.0020296385,0.037602786,0.00028045627,0.000051781222,0.011600491],"study_design_scores_gemma":[0.0000018664393,0.00001358403,0.9986303,0.0000015354317,0.0000033612348,0.00003485603,0.00020001698,0.0006926075,0.00027601395,0.00006841297,0.00007406496,0.0000035760643],"about_ca_topic_score_codex":0.016490279,"about_ca_topic_score_gemma":0.03771742,"teacher_disagreement_score":0.016490279,"about_ca_system_score_codex":0.00041728694,"about_ca_system_score_gemma":0.00028791057,"threshold_uncertainty_score":0.032788575},"labels":[],"label_agreement":null},{"id":"W2070371041","doi":"10.1002/eco.156","title":"Influence of groundwater spring discharge on small‐scale spatial variation of an alpine stream ecosystem","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Freshwater macroinvertebrate diversity and ecology","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Calgary; Environment and Climate Change Canada","funders":"Parks Canada","keywords":"Environmental science; Groundwater; Periphyton; Hydrology (agriculture); STREAMS; Groundwater discharge; Snowmelt; River ecosystem; Ecosystem; Ecology; Groundwater flow; Biomass (ecology); Surface runoff; Geology; Aquifer","score_opus":0.004593934354862618,"score_gpt":0.1760260128688113,"score_spread":0.1714320785139487,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2070371041","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997516,0.000023855424,0.000040508803,0.000003829673,4.04185e-7,0.0000011742958,0.00005177756,0.0000025369723,0.00012439117],"genre_scores_gemma":[0.9997906,0.000017503304,0.00004801042,0.0000028300105,7.188176e-7,0.0000014498845,0.000088786685,7.195982e-7,0.000049367583],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998313,0.00003672348,0.000012940004,0.00003608194,0.000051998737,0.000030921554],"domain_scores_gemma":[0.99961793,0.000098760254,0.00009311758,0.000017158292,0.00010142348,0.00007165753],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022268583,0.00011395981,0.00024267945,0.0006603924,0.00036076814,0.00060992985,0.00014694138,0.0001565214,0.0005109086],"category_scores_gemma":[0.0005265589,0.00007550086,0.00019307689,0.00068785215,0.00032403154,0.00014551569,0.00037591904,0.00012238657,0.000045037465],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020203223,0.00003292602,0.9641128,0.000031329182,0.0000859489,0.00016148004,0.00041544205,0.0008034682,0.026472796,0.000044617434,0.000056376342,0.0075806575],"study_design_scores_gemma":[0.0000010655382,0.000022982407,0.99930966,8.7886235e-7,0.0000043844125,0.000015089173,0.00011425616,0.00028564,0.00018639759,0.000005409794,0.000052763313,0.0000015139369],"about_ca_topic_score_codex":0.059796076,"about_ca_topic_score_gemma":0.11250062,"teacher_disagreement_score":0.059796076,"about_ca_system_score_codex":0.0007639407,"about_ca_system_score_gemma":0.00034324537,"threshold_uncertainty_score":0.11889601},"labels":[],"label_agreement":null},{"id":"W2099088683","doi":"10.1002/eco.1544","title":"Biological bank protection: trees are more effective than grasses at resisting erosion from major river floods","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":29,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Water Research Institute","keywords":"Floodplain; Riparian zone; Bank erosion; Bank; Meander (mathematics); Hydrology (agriculture); Deciduous; Grassland; Riparian forest; Flood myth; Vegetation (pathology); Erosion; Environmental science; Channel (broadcasting); Ecology; Geology; Geography; Habitat; Geomorphology","score_opus":0.010865601598583465,"score_gpt":0.21414431802462539,"score_spread":0.20327871642604192,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2099088683","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99838245,0.00016771915,0.000051548308,0.00002627823,0.0000015170133,0.0000028861004,0.00005245204,0.0000028753284,0.0013122931],"genre_scores_gemma":[0.99924207,0.00007690728,0.00009569495,0.000023807184,0.0000021269902,0.0000012821797,0.000036327005,0.0000011050034,0.0005206778],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998795,0.000017852939,0.000006610661,0.00003168648,0.000022816363,0.000041692023],"domain_scores_gemma":[0.999608,0.000040737,0.00014715636,0.000011903221,0.00005727649,0.00013496642],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000239199,0.00013337421,0.0001577407,0.00032527576,0.00048419213,0.00064738654,0.0001453235,0.00022711589,0.002467693],"category_scores_gemma":[0.0005140971,0.00007438813,0.000076439224,0.0002618975,0.00033576423,0.00022852802,0.00014541346,0.00012696456,0.00016845315],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00045303427,0.00011012346,0.94495016,0.00012075069,0.00013711963,0.0001551305,0.000494486,0.00038448596,0.022127358,0.0001643917,0.0004882947,0.030414568],"study_design_scores_gemma":[0.0000027082867,0.00004178194,0.99923885,0.000005622591,0.000011578405,0.000024606974,0.00018493904,0.00005738106,0.00015940613,0.000028370168,0.00024321792,0.0000014965811],"about_ca_topic_score_codex":0.044589806,"about_ca_topic_score_gemma":0.18971992,"teacher_disagreement_score":0.044589806,"about_ca_system_score_codex":0.0004847867,"about_ca_system_score_gemma":0.00047206337,"threshold_uncertainty_score":0.08866054},"labels":[],"label_agreement":null},{"id":"W2101908816","doi":"10.1002/eco.1536","title":"Assessing seasonal drought stress response in Norway spruce (<i>Picea abies</i> (L.) Karst.) by monitoring stem circumference and sap flow","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":49,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Lethbridge","funders":"","keywords":"Picea abies; Evapotranspiration; Karst; Environmental science; Irrigation; Hydrology (agriculture); Circumference; Water content; Animal science; Agronomy; Ecology; Biology; Mathematics; Geology","score_opus":0.007191726013858437,"score_gpt":0.21439005601159672,"score_spread":0.2071983299977383,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2101908816","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99955696,0.0000427262,0.00020433296,0.0000018493847,8.5991906e-7,0.0000032955015,0.00007631973,0.000007517896,0.000106183106],"genre_scores_gemma":[0.99906117,0.000041363764,0.00051944685,0.000011747966,0.0000011693713,0.000009002737,0.00023325182,0.0000026871912,0.00012020993],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99992573,0.000012309121,0.000007345753,0.000029497452,0.000013630219,0.000011513798],"domain_scores_gemma":[0.9997838,0.000031723623,0.00007593225,0.000013111143,0.00003002224,0.00006541115],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002842414,0.00022048649,0.00020398539,0.00027925352,0.00021037055,0.00026187452,0.00016954246,0.00012839008,0.0003290203],"category_scores_gemma":[0.00013752974,0.00011818125,0.00015752847,0.00019903296,0.00016953534,0.0001952669,0.0001854539,0.00019881522,0.000084587955],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004268338,0.00014448215,0.42508057,0.000083101535,0.00007061256,0.00012471306,0.00030315347,0.0010277727,0.56329256,0.000033362805,0.0000952394,0.00931765],"study_design_scores_gemma":[0.0000032125208,0.00018202141,0.9935475,0.0000020339717,0.000010224688,0.000039189254,0.00009461635,0.0008745322,0.0051008216,0.000011884327,0.00012946886,0.000004552981],"about_ca_topic_score_codex":0.0071903146,"about_ca_topic_score_gemma":0.014241251,"teacher_disagreement_score":0.0071903146,"about_ca_system_score_codex":0.00022139253,"about_ca_system_score_gemma":0.0001434563,"threshold_uncertainty_score":0.014296949},"labels":[],"label_agreement":null},{"id":"W2103816540","doi":"10.1002/eco.1669","title":"Evaluation of the presence of streambed vegetation on storage and run‐off in hillslope streams in a High Arctic environment","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"York University","funders":"Government of Canada; ArcticNet; Australian Government; Garfield Weston Foundation","keywords":"Streamflow; STREAMS; Hydrology (agriculture); Environmental science; Vegetation (pathology); Snowmelt; Meltwater; Drainage basin; Snow; Geology; Geomorphology","score_opus":0.04036508441302095,"score_gpt":0.24467302315518955,"score_spread":0.2043079387421686,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2103816540","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996959,0.000035275418,0.000022501103,0.0000017325242,9.037675e-7,0.0000025122977,0.00008082953,0.0000012105793,0.00015903708],"genre_scores_gemma":[0.9995266,0.000054050455,0.00010595825,0.0000041546764,0.0000018372411,0.0000032309906,0.00018296074,0.0000010155928,0.00012027271],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99978346,0.000039928163,0.000016286993,0.000039067854,0.000067812,0.000053436106],"domain_scores_gemma":[0.9992162,0.00010932936,0.000207612,0.000015642669,0.0002336817,0.00021751576],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037040655,0.0002262971,0.00021362708,0.00082724553,0.00064306014,0.000697954,0.00017352148,0.00014734406,0.0004898008],"category_scores_gemma":[0.0006311544,0.000112763395,0.00021470814,0.000691166,0.00026025219,0.00019395833,0.00026266096,0.00013383233,0.000071139446],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014468626,0.000036370013,0.9946582,0.000017948094,0.000042712196,0.00010389814,0.00025831247,0.00013979372,0.0024130782,0.000009231322,0.000027780954,0.0021479796],"study_design_scores_gemma":[6.115933e-7,0.000037325957,0.99921,0.000003318442,0.000009898736,0.000025552255,0.0003283264,0.00014671445,0.00018587099,0.0000025997413,0.000048341673,0.0000014120347],"about_ca_topic_score_codex":0.10561614,"about_ca_topic_score_gemma":0.3137856,"teacher_disagreement_score":0.10561614,"about_ca_system_score_codex":0.00083196687,"about_ca_system_score_gemma":0.00057212135,"threshold_uncertainty_score":0.21000278},"labels":[],"label_agreement":null},{"id":"W2104624274","doi":"10.1002/eco.1639","title":"Burn severity alters peatland moss water availability: implications for post‐fire recovery","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":37,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta; University of Waterloo; McMaster University","funders":"Syncrude","keywords":"Peat; Sphagnum; Environmental science; Moss; Prescribed burn; Water content; Hydrology (agriculture); Ecology; Geology; Biology","score_opus":0.017469340781318968,"score_gpt":0.2427297117966958,"score_spread":0.22526037101537683,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2104624274","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99975604,0.000047273472,0.0000634785,0.000003987267,7.05319e-7,0.000001599282,0.00003131444,0.0000025564984,0.00009310727],"genre_scores_gemma":[0.9997899,0.000028197403,0.000050036775,0.000005436828,6.3220625e-7,0.0000014103126,0.000040828232,8.084129e-7,0.00008278949],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999424,0.0000075770354,0.0000045357997,0.000013728956,0.000010852598,0.000020833322],"domain_scores_gemma":[0.9997789,0.000029663752,0.0000884304,0.000009276202,0.00002859681,0.000065087625],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013650971,0.00015244166,0.0001664811,0.0002077127,0.00015618581,0.00028534376,0.00010448807,0.00012664522,0.0008037852],"category_scores_gemma":[0.00021411669,0.0000762471,0.00011382232,0.00013019658,0.00015154961,0.0001877958,0.00018709271,0.00018901161,0.0000755023],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0009879756,0.00024848222,0.54582703,0.00007253437,0.00007436999,0.00021594658,0.00020181245,0.0010536457,0.43962494,0.00005050674,0.00007712648,0.011565661],"study_design_scores_gemma":[0.0000012599515,0.000097346005,0.9955896,0.0000020351533,0.0000042842826,0.000029783205,0.000104074716,0.00033190873,0.003776398,0.000015226329,0.000046145764,0.0000019049081],"about_ca_topic_score_codex":0.0037570912,"about_ca_topic_score_gemma":0.007816355,"teacher_disagreement_score":0.0037570912,"about_ca_system_score_codex":0.00027546159,"about_ca_system_score_gemma":0.00013611082,"threshold_uncertainty_score":0.007470429},"labels":[],"label_agreement":null},{"id":"W2105899908","doi":"10.1002/eco.1405","title":"An integrated modelling framework of catchment‐scale ecohydrological processes: 2. The role of water subsidy by overland flow on vegetation dynamics in a semi‐arid catchment","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institut National de la Recherche Scientifique","funders":"","keywords":"Environmental science; Surface runoff; Infiltration (HVAC); Soil water; Hydrology (agriculture); Ecohydrology; Water content; Arid; Soil science; Ecosystem; Geology; Ecology","score_opus":0.004595248140350656,"score_gpt":0.20275496812629742,"score_spread":0.19815971998594678,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2105899908","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.83142847,0.00024487567,0.16145313,0.00033491195,0.000023692224,0.00007908449,0.0004768373,0.00035392243,0.005605132],"genre_scores_gemma":[0.9913833,0.000101538775,0.0075093177,0.000013551563,0.000007991274,0.00004259935,0.00008980545,0.000019015813,0.00083287957],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99990857,0.00003227231,0.000006669009,0.000021949074,0.000011349983,0.000019226105],"domain_scores_gemma":[0.9998672,0.000052316762,0.000020762514,0.000010318241,0.000025841586,0.000023582901],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00031986617,0.0004158207,0.00036730684,0.00033259505,0.00030917433,0.001082968,0.0006987805,0.0006506801,0.00092472124],"category_scores_gemma":[0.00058457523,0.000295486,0.0004629706,0.0004603307,0.00057330204,0.0007789978,0.0006347761,0.00040740607,0.00007619862],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000014081547,0.000032515298,0.0021404135,0.000008287136,0.000021359221,0.000031487838,0.000041369025,0.9919715,0.0013451959,0.002364449,0.00006263819,0.0019667998],"study_design_scores_gemma":[0.0000056332033,0.000005663768,0.000741081,0.0000013560777,0.000006105403,0.0000026575692,0.00001141976,0.9983895,0.00010682793,0.00057073164,0.00015678882,0.000002308139],"about_ca_topic_score_codex":0.032069106,"about_ca_topic_score_gemma":0.020068478,"teacher_disagreement_score":0.032069106,"about_ca_system_score_codex":0.0013113586,"about_ca_system_score_gemma":0.0009996026,"threshold_uncertainty_score":0.06376493},"labels":[],"label_agreement":null},{"id":"W2106300804","doi":"10.1002/eco.105","title":"Modelling rainfall interception loss in forest restoration trials in Panama","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":34,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Winnipeg; Thompson Rivers University","funders":"Natural Sciences and Engineering Research Council of Canada; Smithsonian Tropical Research Institute; Grantham Foundation for the Protection of the Environment","keywords":"Interception; Environmental science; Throughfall; Acacia mangium; Basal area; Hydrology (agriculture); Stemflow; Crown (dentistry); Tree (set theory); Sensitivity (control systems); Forestry; Soil science; Mathematics; Soil water; Ecology; Geology; Geography; Biology; Botany","score_opus":0.019139538263365508,"score_gpt":0.24435337933120857,"score_spread":0.22521384106784306,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2106300804","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99814975,0.000046436682,0.0014907424,0.000013516681,0.0000012173415,0.000018360835,0.000046413305,0.00002791197,0.0002057496],"genre_scores_gemma":[0.99898344,0.000023103239,0.00081130565,0.0000031432828,8.50453e-7,0.000025257817,0.00006147952,0.0000051183974,0.00008630157],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.9996043,0.00022029148,0.000023336896,0.00008143241,0.000031342784,0.000039361206],"domain_scores_gemma":[0.9984438,0.0010418353,0.000272809,0.000090505164,0.000094236406,0.000056799337],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001815522,0.00047618194,0.0006576781,0.00036760024,0.0003234482,0.00070741883,0.00077054754,0.0005064906,0.0006593277],"category_scores_gemma":[0.0027561083,0.00028664985,0.0003819684,0.00046982957,0.0003933976,0.0005768198,0.00035575422,0.00038240288,0.0000825332],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00039626771,0.00018889781,0.06626976,0.000045099892,0.000089588495,0.00014032768,0.00013462197,0.9236116,0.0022064487,0.00020031183,0.00010028671,0.006616853],"study_design_scores_gemma":[0.00003596685,0.0002987388,0.02457802,0.0000060105544,0.000034615543,0.000032591008,0.0000664224,0.97359306,0.0010622685,0.0001335058,0.00014753861,0.000011304106],"about_ca_topic_score_codex":0.023895457,"about_ca_topic_score_gemma":0.018977344,"teacher_disagreement_score":0.023895457,"about_ca_system_score_codex":0.0015713291,"about_ca_system_score_gemma":0.0004255139,"threshold_uncertainty_score":0.04751271},"labels":[],"label_agreement":null},{"id":"W2114750344","doi":"10.1002/eco.1685","title":"Characterizing dominant controls governing evapotranspiration within a natural saline fen in the Athabasca Oil Sands of Alberta, Canada","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo; Wilfrid Laurier University","funders":"Natural Sciences and Engineering Research Council of Canada; Suncor Energy Incorporated","keywords":"Environmental science; Evapotranspiration; Peat; Vegetation (pathology); Boreal; Transpiration; Wetland; Hydrology (agriculture); Land reclamation; Water table; Sphagnum; Shrub; Growing season; Ecology; Groundwater; Geology; Botany; Biology","score_opus":0.00847147858472578,"score_gpt":0.20729079141268278,"score_spread":0.198819312827957,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2114750344","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9990434,0.000053592456,0.00007007528,0.000011001109,6.947142e-7,0.0000052867977,0.00016972398,0.000004227237,0.0006418745],"genre_scores_gemma":[0.9989882,0.00005469812,0.00021952756,0.000008333793,6.571402e-7,0.0000035327096,0.0001929852,0.0000019191993,0.0005300675],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998398,0.000009715748,0.000004937898,0.000037394282,0.000041093248,0.0000670565],"domain_scores_gemma":[0.9997044,0.00002133879,0.000047739886,0.000007994427,0.00013081497,0.000087541455],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014565382,0.0002197731,0.00018888082,0.00097412086,0.001518605,0.0006652352,0.00050426193,0.00012791228,0.00060204364],"category_scores_gemma":[0.00023387323,0.00011003196,0.00015750759,0.0011169615,0.0006177712,0.00016505268,0.00030219136,0.00014154342,0.00008255035],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027462794,0.000076809134,0.9565638,0.00004725201,0.000051152743,0.00042019255,0.0019121577,0.0010514786,0.024722615,0.00025763598,0.00035748055,0.014264839],"study_design_scores_gemma":[0.000002058554,0.0000121036055,0.9973552,0.0000039110714,0.0000056428457,0.00003573752,0.0013874795,0.00042376047,0.00033861,0.000021213396,0.00041029364,0.0000038839635],"about_ca_topic_score_codex":0.9605253,"about_ca_topic_score_gemma":0.99188554,"teacher_disagreement_score":0.039474726,"about_ca_system_score_codex":0.008658433,"about_ca_system_score_gemma":0.0055238293,"threshold_uncertainty_score":0.07941437},"labels":[],"label_agreement":null},{"id":"W2117477952","doi":"10.1002/eco.1370","title":"Monitoring stream barb performance in a semi‐alluvial meandering channel: flow field dynamics and morphology","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Ottawa; Environment and Climate Change Canada","funders":"Natural Sciences and Engineering Research Council of Canada; Natural Resources Conservation Service; University of Ottawa","keywords":"Alluvium; Hydrology (agriculture); Bathymetry; Bank; Bank erosion; Channel (broadcasting); Geology; Acoustic Doppler current profiler; STREAMS; Flow velocity; Sediment; Flow (mathematics); Current (fluid); Geomorphology; Oceanography; Geotechnical engineering; Geometry; Engineering","score_opus":0.005051179501700304,"score_gpt":0.1874566872501137,"score_spread":0.18240550774841338,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2117477952","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996019,0.0000116268475,0.00009382636,0.0000016636855,7.6014e-7,0.000009709853,0.00012875327,0.0000054438356,0.00014628988],"genre_scores_gemma":[0.99895465,0.000015027943,0.00043811082,0.0000027445099,6.4304305e-7,0.000008686233,0.00023427224,0.0000018639428,0.00034408836],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998099,0.000016660793,0.000008292711,0.00005459989,0.00006357948,0.000046945126],"domain_scores_gemma":[0.9991841,0.000060059618,0.00018685896,0.000032775588,0.00036896282,0.00016715605],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027464287,0.00024087976,0.0002516252,0.0008447487,0.0005867486,0.0004890528,0.0004260344,0.0002554727,0.0004788248],"category_scores_gemma":[0.00048918003,0.00017447962,0.00017840529,0.0007193112,0.00039632877,0.00017995368,0.00025214272,0.0002311886,0.00015041027],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001781848,0.00008549025,0.9704663,0.000025396621,0.000023702414,0.00012362502,0.0008161034,0.00057333865,0.021191357,0.000018354343,0.000117788455,0.006380337],"study_design_scores_gemma":[0.0000015546262,0.00010041481,0.9986646,0.0000022424972,0.000005003661,0.000019236611,0.00023635241,0.00034566675,0.0005028801,0.0000019228862,0.00011684012,0.0000033567244],"about_ca_topic_score_codex":0.2956786,"about_ca_topic_score_gemma":0.664274,"teacher_disagreement_score":0.2956786,"about_ca_system_score_codex":0.0016505168,"about_ca_system_score_gemma":0.0010687786,"threshold_uncertainty_score":0.58791506},"labels":[],"label_agreement":null},{"id":"W2119573393","doi":"10.1002/eco.130","title":"<i>Sphagnum</i> moss moisture retention following the re‐vegetation of degraded peatlands","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":33,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University","funders":"","keywords":"Peat; Sphagnum; Moss; Environmental science; Vegetation (pathology); Bulk density; Soil science; Water content; Hydrology (agriculture); Geology; Soil water; Botany; Ecology; Biology","score_opus":0.007518098458827655,"score_gpt":0.21803076862996293,"score_spread":0.21051267017113529,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2119573393","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99981064,0.000016631562,0.000021916323,0.000002493808,3.6488504e-7,0.0000015422125,0.000040886593,0.000002392976,0.00010318647],"genre_scores_gemma":[0.99973124,0.0000066089306,0.000028062157,0.0000027236272,2.2920074e-7,0.0000011938804,0.00008180058,7.425608e-7,0.00014734444],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999335,0.0000038716125,0.0000019667436,0.000013021226,0.00001137826,0.00003639217],"domain_scores_gemma":[0.99971956,0.00001899144,0.00006661192,0.000012413376,0.00008315064,0.00009923075],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011159668,0.000149262,0.000203757,0.00021916688,0.00032856048,0.00040828748,0.000220813,0.00015194259,0.00070978334],"category_scores_gemma":[0.00027216473,0.000082351675,0.000108010005,0.00015787687,0.00030165393,0.00016442908,0.00017040972,0.0002350381,0.00009824937],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0018299549,0.00024226116,0.71311045,0.00007866538,0.00010322397,0.0009862169,0.0015134854,0.0011787193,0.26715136,0.00007204745,0.00032231156,0.013411233],"study_design_scores_gemma":[0.0000014038559,0.00004867989,0.99778324,0.0000017524684,0.0000031715374,0.000043662843,0.0002234929,0.00019011839,0.0015812776,0.000004989505,0.00011606231,0.0000021355613],"about_ca_topic_score_codex":0.2724674,"about_ca_topic_score_gemma":0.38717142,"teacher_disagreement_score":0.2724674,"about_ca_system_score_codex":0.0017105158,"about_ca_system_score_gemma":0.00061390526,"threshold_uncertainty_score":0.54176295},"labels":[],"label_agreement":null},{"id":"W2120961352","doi":"10.1002/eco.1474","title":"Five‐year legacy of wildfire and salvage logging impacts on nutrient runoff and aquatic plant, invertebrate, and fish productivity","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fire effects on ecosystems","field":"Environmental Science","cited_by":133,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo; Government of Northwest Territories; Alberta Environment and Protected Areas; University of Lethbridge; University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Innovates","keywords":"Environmental science; Benthic zone; Invertebrate; Biomass (ecology); Productivity; Ecology; Trophic level; STREAMS; Trout; Biota; Periphyton; Nutrient; Fishery; Biology; Fish <Actinopterygii>","score_opus":0.004248956347984294,"score_gpt":0.18784232493974468,"score_spread":0.18359336859176037,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2120961352","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99970406,0.000037420526,0.000012713178,0.0000075990197,0.0000013825862,7.8096986e-7,0.00015928336,0.0000017305435,0.000075012016],"genre_scores_gemma":[0.9993031,0.000024041708,0.000019506404,0.0000058738788,0.0000022237398,0.0000010513703,0.00042157067,4.1209609e-7,0.00022218551],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999113,0.000009288496,0.0000046952146,0.000013289926,0.000024827523,0.00003670604],"domain_scores_gemma":[0.9995369,0.00004367102,0.00013676516,0.00001833225,0.000115817325,0.0001485872],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026758818,0.00016585001,0.0001491317,0.0003880439,0.00034549556,0.00042004712,0.00025185227,0.0002300915,0.0006167749],"category_scores_gemma":[0.0005360753,0.00009161736,0.00018180392,0.00027778826,0.000257442,0.00016565988,0.00022410013,0.00017700317,0.0000721578],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021214657,0.000062663894,0.9952447,0.000005519487,0.000053021166,0.00013697172,0.000110228044,0.00021261364,0.0010454197,0.0000148617955,0.000113070404,0.0027887642],"study_design_scores_gemma":[9.535227e-7,0.00003507664,0.9996619,0.0000010287351,0.00000550179,0.000023752267,0.00005956094,0.000100020436,0.00005380698,0.0000037169466,0.000053702555,8.9578924e-7],"about_ca_topic_score_codex":0.20981061,"about_ca_topic_score_gemma":0.5217486,"teacher_disagreement_score":0.20981061,"about_ca_system_score_codex":0.0012744209,"about_ca_system_score_gemma":0.00069821504,"threshold_uncertainty_score":0.41717875},"labels":[],"label_agreement":null},{"id":"W2124832462","doi":"10.1002/eco.1539","title":"Modelling the relationship between catchment attributes and wetland water quality in Japan","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Water Quality and Pollution Assessment","field":"Environmental Science","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Alexander von Humboldt-Stiftung","keywords":"Turbidity; Water quality; Drainage basin; Nitrogen; Wetland; Hydrology (agriculture); Regosol; Total dissolved solids; Environmental science; Chemistry; Animal science; Environmental chemistry; Geography; Soil water; Ecology; Environmental engineering; Soil science; Biology; Soil classification; Geology","score_opus":0.0709337400308734,"score_gpt":0.2998896049087583,"score_spread":0.22895586487788494,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2124832462","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9972983,0.00005149282,0.0023027193,0.000029446019,0.0000033323765,0.00001093889,0.00013495682,0.000020621039,0.0001482933],"genre_scores_gemma":[0.9984232,0.000044307795,0.0011442474,0.0000068409718,0.00000361022,0.00001755422,0.00016822274,0.0000065071526,0.00018557043],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997452,0.00006681672,0.000015597696,0.0000946832,0.000018799832,0.000058920694],"domain_scores_gemma":[0.99937063,0.00031661883,0.00009252031,0.000028788125,0.000108761975,0.00008258669],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006701806,0.0006108973,0.0005656335,0.0005977064,0.0003458211,0.0010690383,0.00064567354,0.0006369238,0.00058611395],"category_scores_gemma":[0.0015723888,0.0005888192,0.0009336865,0.0010111564,0.0004504564,0.0006521953,0.0005260698,0.00035573472,0.00006874386],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001659539,0.00014911649,0.34332263,0.000073419025,0.00024128931,0.00048645816,0.00022531018,0.6436755,0.0025655027,0.00037020847,0.00025981266,0.008464896],"study_design_scores_gemma":[0.000016899414,0.00005549248,0.091622144,0.0000043515674,0.000073776166,0.00003327674,0.00012783488,0.90749717,0.00017533932,0.00022895182,0.00014825526,0.000016514285],"about_ca_topic_score_codex":0.12551798,"about_ca_topic_score_gemma":0.08708341,"teacher_disagreement_score":0.12551798,"about_ca_system_score_codex":0.0016368827,"about_ca_system_score_gemma":0.0011940809,"threshold_uncertainty_score":0.24957472},"labels":[],"label_agreement":null},{"id":"W2124834706","doi":"10.1002/eco.234","title":"Influence of runoff regime type on a macroinvertebrate‐based flow index in rivers of British Columbia (Canada)","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Freshwater macroinvertebrate diversity and ecology","field":"Environmental Science","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Victoria; University of New Brunswick","funders":"","keywords":"Biomonitoring; Environmental science; Surface runoff; Hydrology (agriculture); Ecoregion; Drainage basin; Water quality; Biota; Index (typography); Ecology; Geography; Computer science; Biology; Cartography; Geology","score_opus":0.007925542524357353,"score_gpt":0.1611330055826308,"score_spread":0.15320746305827346,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2124834706","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.996268,0.0002526915,0.00018759108,0.000074705946,0.000003834599,0.000013937268,0.0018004973,0.000019356792,0.0013794402],"genre_scores_gemma":[0.99725914,0.0001766739,0.000302015,0.000034892324,0.0000014397896,0.000010368561,0.0011780828,0.00000676089,0.0010305886],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996251,0.000054706637,0.00002248758,0.00009216092,0.00011972196,0.000085726075],"domain_scores_gemma":[0.9990946,0.00014596347,0.00011497444,0.000034329467,0.00042113254,0.00018909498],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00039987985,0.00020322517,0.00025018773,0.0010427997,0.0010560116,0.0010015911,0.0004145846,0.00019337407,0.0013666742],"category_scores_gemma":[0.0013968911,0.0001345525,0.00018562534,0.0020786626,0.00055492803,0.00013896397,0.00048120113,0.0002456047,0.00013067843],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000046216675,0.000013760135,0.98552066,0.00002853775,0.000061646715,0.00006988107,0.0004198838,0.0007116987,0.0014185818,0.00005688295,0.0011115766,0.010540598],"study_design_scores_gemma":[9.677167e-7,0.0000030446795,0.9990004,0.0000055295577,0.000006120942,0.000009572168,0.00024968016,0.00026135406,0.00006166841,0.000008563252,0.00039015317,0.0000029755372],"about_ca_topic_score_codex":0.98581856,"about_ca_topic_score_gemma":0.99497354,"teacher_disagreement_score":0.014181435,"about_ca_system_score_codex":0.0073045166,"about_ca_system_score_gemma":0.006815051,"threshold_uncertainty_score":0.052998245},"labels":[],"label_agreement":null},{"id":"W2124955994","doi":"10.1002/eco.1687","title":"A quantitative assessment on the response of flow regimes to cumulative forest disturbances in large snow‐dominated watersheds in the interior of British Columbia, Canada","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Environmental science; Watershed; Magnitude (astronomy); Hydrology (agriculture); Snow; Willow; Context (archaeology); Forest management; Ecosystem; Climate change; Streamflow; Cumulative effects; Ecology; Geography; Drainage basin; Agroforestry; Geology; Meteorology","score_opus":0.015343531362772363,"score_gpt":0.25625961695950145,"score_spread":0.24091608559672908,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2124955994","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9989366,0.000033032717,0.0001808721,0.000007384013,0.0000011262458,0.000014955728,0.00030571388,0.000009804896,0.00051063247],"genre_scores_gemma":[0.99911124,0.00002804053,0.00025601304,0.000005410851,8.4277883e-7,0.000012639676,0.00033710353,0.0000016141412,0.00024707208],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99953973,0.00005426178,0.000031188043,0.00009079533,0.00019300578,0.00009101101],"domain_scores_gemma":[0.99892056,0.00017885394,0.00018737583,0.000041742904,0.0005315311,0.00013980875],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00043165148,0.00022283877,0.00025316892,0.001619076,0.0008015392,0.0008456414,0.00033597476,0.0002066375,0.00061019993],"category_scores_gemma":[0.0014421826,0.00012738293,0.00019157921,0.0027195353,0.0004583013,0.00016449165,0.00038274992,0.00017938115,0.00006153818],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007566709,0.000048215836,0.9823423,0.000022857188,0.000063707266,0.00013060866,0.00045197734,0.0020027054,0.004067831,0.000034751785,0.00019590068,0.010563373],"study_design_scores_gemma":[9.888327e-7,0.000013515579,0.99817026,0.0000018544857,0.000006074527,0.000012295799,0.00034031493,0.0011933396,0.0001304708,0.0000055858045,0.00012272527,0.0000026356702],"about_ca_topic_score_codex":0.87239534,"about_ca_topic_score_gemma":0.94675934,"teacher_disagreement_score":0.12760466,"about_ca_system_score_codex":0.0042570443,"about_ca_system_score_gemma":0.0033354564,"threshold_uncertainty_score":0.25671226},"labels":[],"label_agreement":null},{"id":"W2125670518","doi":"10.1002/eco.95","title":"Direct and continuous measurement of dissolved carbon dioxide in freshwater aquatic systems—method and applications","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Ocean Acidification Effects and Responses","field":"Earth and Planetary Sciences","cited_by":211,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Environmental science; Carbon dioxide; Carbon dioxide sensor; Aquatic ecosystem; In situ; Continuous monitoring; Dissolved organic carbon; Environmental chemistry; Range (aeronautics); Hydrology (agriculture); Chemistry; Materials science; Geology","score_opus":0.010017487295124188,"score_gpt":0.2200844767568675,"score_spread":0.2100669894617433,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2125670518","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6718094,0.0065521686,0.31247807,0.0005416236,0.00019165131,0.0011471559,0.00090316933,0.00097488955,0.0054019215],"genre_scores_gemma":[0.69956034,0.0037140169,0.2916797,0.00017636808,0.0000627531,0.0009934286,0.00032346073,0.000052212872,0.0034377256],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99915314,0.00020184983,0.000040663705,0.0002042812,0.00036580136,0.000034366887],"domain_scores_gemma":[0.99949443,0.00018785358,0.00007329478,0.0000696988,0.0001398836,0.000034894074],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012916151,0.00048109636,0.00033862595,0.0006181499,0.0003573813,0.00046217645,0.0007102753,0.0007932528,0.000915811],"category_scores_gemma":[0.001161448,0.0003937484,0.00017479167,0.00046874856,0.0005435396,0.00038149915,0.0006017639,0.00041862184,0.0002641862],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009024087,0.00005705164,0.0016914244,0.00020155913,0.0000127356125,0.000065680506,0.00005212973,0.0003228283,0.9817815,0.00012019277,0.000112411595,0.015492227],"study_design_scores_gemma":[0.000026297446,0.00043315729,0.0073399544,0.00002431527,0.000034587123,0.00045048274,0.00007799021,0.005266368,0.9827619,0.00021196296,0.003333563,0.000039494087],"about_ca_topic_score_codex":0.0013490777,"about_ca_topic_score_gemma":0.0021499668,"teacher_disagreement_score":0.0013490777,"about_ca_system_score_codex":0.00042599524,"about_ca_system_score_gemma":0.0003545516,"threshold_uncertainty_score":0.0068308115},"labels":[],"label_agreement":null},{"id":"W2125889286","doi":"10.1002/eco.1440","title":"Alterations to dam‐spill discharge influence sex‐specific activity, behaviour and passage success of migrating adult sockeye salmon","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":40,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Simon Fraser University; Fisheries and Oceans Canada; Carleton University; Golder Associates (Canada); University of British Columbia","funders":"","keywords":"Fish migration; Oncorhynchus; Fishery; Population; Environmental science; Fish <Actinopterygii>; Attraction; Chinook wind; Biology; Demography","score_opus":0.006343327955966658,"score_gpt":0.22289146941282786,"score_spread":0.21654814145686122,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2125889286","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998078,0.000015699756,0.000022297003,0.000004896549,7.603734e-7,0.0000012401863,0.000057747882,0.0000023124103,0.00008725526],"genre_scores_gemma":[0.99950886,0.000027461101,0.000039492275,0.00000963524,6.012837e-7,0.0000030747801,0.00012247579,0.0000020541213,0.00028639313],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99990034,0.000020560285,0.0000060417797,0.000024055205,0.00002060174,0.00002833115],"domain_scores_gemma":[0.9996278,0.000053632193,0.00013284429,0.000022479859,0.00006143247,0.00010163402],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017860734,0.00016085105,0.00013541408,0.00017510944,0.00020527038,0.00033477772,0.000107783344,0.00013164709,0.0011346019],"category_scores_gemma":[0.00059468223,0.00013317203,0.00013219718,0.00019441177,0.00029998305,0.00012102654,0.00022550704,0.00018269363,0.00014737906],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00032802517,0.00009801081,0.96613044,0.000022569804,0.00011039553,0.000085281674,0.00028215096,0.00054497516,0.025975682,0.000014615961,0.00029844054,0.006109501],"study_design_scores_gemma":[7.970329e-7,0.000047013014,0.9995252,7.814588e-7,0.000005724005,0.0000068831864,0.00006345544,0.00014181316,0.00015526854,0.0000027387964,0.000048755996,0.0000014849012],"about_ca_topic_score_codex":0.11912913,"about_ca_topic_score_gemma":0.25219268,"teacher_disagreement_score":0.11912913,"about_ca_system_score_codex":0.00065997394,"about_ca_system_score_gemma":0.0007414635,"threshold_uncertainty_score":0.23687142},"labels":[],"label_agreement":null},{"id":"W2126386309","doi":"10.1002/eco.1596","title":"Ecohydrology and stewardship of Alberta springs ecosystems","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Ecology and biodiversity studies","field":"Environmental Science","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge","funders":"Nature Conservancy of Canada; Nature Conservancy; University of Alberta; U.S. Environmental Protection Agency; Smithsonian Institution","keywords":"Habitat; Ecosystem; Species richness; Environmental science; Ecology; Wetland; Geography; Hydrology (agriculture); Geology","score_opus":0.00463729746723106,"score_gpt":0.17365755930825563,"score_spread":0.16902026184102456,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2126386309","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99869734,0.000066319924,0.000034102777,0.00003828717,0.0000010337052,0.0000020007296,0.00011344935,0.0000027119868,0.0010447917],"genre_scores_gemma":[0.9991799,0.000053953438,0.00007472214,0.000009241901,0.000001248809,0.0000011294893,0.00010297827,0.000001399794,0.000575404],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99975353,0.000040227842,0.000009647125,0.000040004725,0.00007693659,0.000079568905],"domain_scores_gemma":[0.9991722,0.00007473653,0.00021947274,0.00004252799,0.0001703654,0.0003207251],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032354658,0.00011154432,0.00010968667,0.001169732,0.0009928979,0.0011275064,0.0004183344,0.0001316127,0.0018866856],"category_scores_gemma":[0.0007868898,0.00012848084,0.00010501658,0.0013942522,0.00073267584,0.00029210825,0.0006149028,0.00012650654,0.00010753029],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000029636176,0.000019870922,0.98934454,0.000011209709,0.000020441366,0.00009774023,0.0012641477,0.00021840254,0.0007273974,0.00022649125,0.00034033746,0.0076996777],"study_design_scores_gemma":[5.6474147e-7,0.000005047031,0.9982481,0.0000030552383,0.0000019839754,0.000017196218,0.0010613563,0.0001411794,0.00003133198,0.00003293989,0.00045554515,0.0000017189798],"about_ca_topic_score_codex":0.6698127,"about_ca_topic_score_gemma":0.91972303,"teacher_disagreement_score":0.33018732,"about_ca_system_score_codex":0.0035266664,"about_ca_system_score_gemma":0.0028319708,"threshold_uncertainty_score":0.6642637},"labels":[],"label_agreement":null},{"id":"W2128779123","doi":"10.1002/eco.31","title":"<i>Sphagnum</i> under pressure: towards an ecohydrological approach to examining <i>Sphagnum</i> productivity","year":2008,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":78,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Sphagnum; Peat; Environmental science; Water table; Water content; Hydrology (agriculture); Mire; Water transport; Water cycle; Bog; Soil science; Ecology; Water flow; Geology; Groundwater; Biology","score_opus":0.030737689753488274,"score_gpt":0.23609400649190207,"score_spread":0.20535631673841379,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2128779123","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9511908,0.011534082,0.030081278,0.00046744337,0.000027126982,0.00007894616,0.00045616349,0.00014003894,0.0060241465],"genre_scores_gemma":[0.98419213,0.0035681345,0.011256758,0.00008428265,0.000022264203,0.00002970383,0.0001762429,0.000011887804,0.00065869506],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99991345,0.000028707396,0.0000065936083,0.000018390545,0.000024640665,0.000008160022],"domain_scores_gemma":[0.99977404,0.000052819003,0.000088125795,0.000010904808,0.000039887713,0.000034250028],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005688003,0.00020713363,0.00021886636,0.0010226922,0.0001352146,0.0007823275,0.00037950987,0.0002580994,0.00043315743],"category_scores_gemma":[0.00025740836,0.00012317744,0.00021850274,0.0008667281,0.0004542003,0.00077778357,0.00039398737,0.0003021902,0.00010407172],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025902802,0.0002421489,0.29094884,0.0021730673,0.00031716033,0.00065082475,0.00056808477,0.012845834,0.53584045,0.009026454,0.0011120073,0.1460161],"study_design_scores_gemma":[0.0000131913575,0.00034366723,0.90282875,0.000109610424,0.00009924676,0.0004351127,0.00095310056,0.023934683,0.054581642,0.007885049,0.00877106,0.00004496263],"about_ca_topic_score_codex":0.004695998,"about_ca_topic_score_gemma":0.004351506,"teacher_disagreement_score":0.004695998,"about_ca_system_score_codex":0.00060588104,"about_ca_system_score_gemma":0.00038413715,"threshold_uncertainty_score":0.009337366},"labels":[],"label_agreement":null},{"id":"W2129946610","doi":"10.1002/eco.215","title":"Annual runoff and evapotranspiration of forestlands and non‐forestlands in selected basins of the Loess Plateau of China","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":124,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Surface runoff; Evapotranspiration; Environmental science; Precipitation; Hydrology (agriculture); Afforestation; Water balance; Physical geography; Forestry; Geology; Geography; Agroforestry; Ecology","score_opus":0.0058264783203656806,"score_gpt":0.18166805151910012,"score_spread":0.17584157319873445,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2129946610","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996885,0.00002121047,0.000052281826,0.000007008265,3.0422953e-7,0.0000013571249,0.00011319087,0.000004255964,0.00011182234],"genre_scores_gemma":[0.9996555,0.000013472149,0.00004199947,0.0000025185025,0.0000010010547,0.0000032725677,0.00020663087,9.1785586e-7,0.000074827396],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988794,0.000020838484,0.000013382317,0.000030487758,0.000020389569,0.000027004422],"domain_scores_gemma":[0.9998479,0.000030789444,0.000044446908,0.000011757799,0.00003274985,0.000032303516],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025800813,0.0002333747,0.00020542703,0.00090732746,0.00027726384,0.000398785,0.00019138622,0.00019034561,0.0005526082],"category_scores_gemma":[0.00034253843,0.0001282704,0.00028032268,0.00092889584,0.0002160355,0.00036997016,0.00029499058,0.00007603632,0.000055897184],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00005921046,0.000026498845,0.9880244,0.000027870681,0.0000816936,0.0001491111,0.00022547336,0.0020601181,0.0043750466,0.00006924939,0.00008549128,0.0048158104],"study_design_scores_gemma":[0.0000027254837,0.000008532133,0.99774593,0.0000014280928,0.000008389335,0.000021016054,0.00009837695,0.0018517707,0.00015183614,0.000025221167,0.000082168655,0.0000026103905],"about_ca_topic_score_codex":0.02448917,"about_ca_topic_score_gemma":0.03266397,"teacher_disagreement_score":0.02448917,"about_ca_system_score_codex":0.0005713778,"about_ca_system_score_gemma":0.00040339117,"threshold_uncertainty_score":0.04869324},"labels":[],"label_agreement":null},{"id":"W2132831893","doi":"10.1002/eco.1365","title":"Is ecohydrology missing much of the zoo?","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Ecology and biodiversity studies","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"","keywords":"Ecohydrology; Scarcity; Ecosystem; Environmental resource management; Ecology; Environmental science; Biology","score_opus":0.007907268539443672,"score_gpt":0.18520113918042677,"score_spread":0.1772938706409831,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2132831893","genre_codex":"review","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.062097438,0.6300026,0.006137633,0.21167925,0.009460237,0.00003637551,0.0018712378,0.00020560209,0.0785097],"genre_scores_gemma":[0.5363146,0.38230655,0.005830009,0.04033851,0.012481757,0.000055362292,0.0012641804,0.0001956906,0.021213293],"study_design_codex":"design_other","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9991351,0.00036398295,0.00007055636,0.00010379337,0.00024057587,0.00008607021],"domain_scores_gemma":[0.9942988,0.00326461,0.000742828,0.0005136256,0.0007253941,0.0004547282],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.002089501,0.0002931215,0.0005921255,0.005120313,0.0014497665,0.0041414285,0.0005740624,0.00094673014,0.017207317],"category_scores_gemma":[0.005745045,0.0002374079,0.00019534642,0.0060017942,0.0060592047,0.008219153,0.0016927561,0.0013223875,0.0015523051],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0002249141,0.000072674964,0.03692172,0.005154245,0.00018365096,0.0013643206,0.011579798,0.00065303507,0.0018875654,0.17296122,0.21490765,0.55408925],"study_design_scores_gemma":[0.0000087705275,0.000036815312,0.045152754,0.0040925313,0.00003484012,0.0009234346,0.0103144515,0.00022210905,0.00033063642,0.051380996,0.8874646,0.00003792289],"about_ca_topic_score_codex":0.009786879,"about_ca_topic_score_gemma":0.013454002,"teacher_disagreement_score":0.017207317,"about_ca_system_score_codex":0.00186469,"about_ca_system_score_gemma":0.0017321348,"threshold_uncertainty_score":0.05756426},"labels":[],"label_agreement":null},{"id":"W2132939820","doi":"10.1002/eco.1667","title":"Spatial variation in nutrient dynamics among five different peatland types in the Alberta oil sands region","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":47,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Innovates; Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada; Petroleum Technology Alliance Canada; Suncor Energy Incorporated","keywords":"Peat; Environmental science; Nutrient; Wetland; Hydrology (agriculture); Mineralization (soil science); Mire; Boreal; Growing season; Ecosystem; Water table; Ecology; Soil science; Soil water; Geology; Biology; Groundwater","score_opus":0.007560685436424789,"score_gpt":0.20152711025456363,"score_spread":0.19396642481813883,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2132939820","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99978274,0.000014816785,0.000024916833,0.0000022609913,3.4699127e-7,0.0000013515953,0.0000709215,0.0000020571413,0.00010053893],"genre_scores_gemma":[0.999589,0.000017072742,0.000101906,0.0000022101683,3.595336e-7,0.0000020090367,0.00013754811,5.668375e-7,0.00014930578],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998865,0.000010792471,0.000007623811,0.00002721203,0.000029100514,0.00003878402],"domain_scores_gemma":[0.99969375,0.000047102272,0.00008634062,0.000014057118,0.00008129171,0.00007753567],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020544443,0.00014057137,0.00013283151,0.0010916429,0.0004466965,0.00046512394,0.00029677225,0.00013640433,0.000385611],"category_scores_gemma":[0.00028763374,0.000109304936,0.00013688525,0.00078458857,0.00041984976,0.00010507187,0.00028810636,0.00007987993,0.000050577873],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010744168,0.000027748976,0.9877258,0.00001480085,0.00003602506,0.00013666316,0.0007041932,0.0004247533,0.0057146694,0.000039761613,0.00008298088,0.0049851197],"study_design_scores_gemma":[9.370825e-7,0.000008197959,0.9990551,0.0000020068092,0.0000035898688,0.000016689117,0.00041079428,0.0002721466,0.00014681586,0.0000059664626,0.00007627551,0.0000015945601],"about_ca_topic_score_codex":0.5795457,"about_ca_topic_score_gemma":0.8370728,"teacher_disagreement_score":0.42045432,"about_ca_system_score_codex":0.001763463,"about_ca_system_score_gemma":0.0010699725,"threshold_uncertainty_score":0.84586096},"labels":[],"label_agreement":null},{"id":"W2133673201","doi":"10.1002/eco.193","title":"Forest ecohydrological research in the 21st century: what are the critical needs?","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":160,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"","keywords":"Ecohydrology; Watershed; Ecosystem services; Environmental science; Climate change; Land use, land-use change and forestry; Environmental resource management; Riparian zone; Land use; Watershed management; Ecosystem; Hydrology (agriculture); Ecology; Computer science; Habitat","score_opus":0.07830230165850173,"score_gpt":0.3012707653340451,"score_spread":0.2229684636755434,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2133673201","genre_codex":"review","genre_gemma":"review","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"review","genre_consensus":"review","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.0018272086,0.49494675,0.0012211107,0.49245426,0.006849892,0.000015710877,0.000113851784,0.000036263806,0.002534916],"genre_scores_gemma":[0.05010728,0.8379412,0.0059807645,0.07424339,0.029425189,0.00011320109,0.00019029164,0.00004966332,0.001948958],"study_design_codex":"design_other","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99499196,0.0020364018,0.00034642126,0.00052494474,0.0014830574,0.00061726413],"domain_scores_gemma":[0.93017393,0.04200392,0.0028024665,0.0019052019,0.015137144,0.007977214],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.022851398,0.00086398766,0.0023374667,0.0035755732,0.0029929015,0.012202021,0.0028247812,0.009098363,0.008329368],"category_scores_gemma":[0.03548735,0.000493114,0.0010387374,0.005213966,0.01506737,0.017759865,0.005283566,0.011259787,0.001197067],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014424276,0.00025291313,0.007018605,0.007283468,0.00012828618,0.00049236673,0.0039025417,0.0023448388,0.0008075768,0.21789299,0.30801898,0.45171326],"study_design_scores_gemma":[0.000027088221,0.00010303933,0.0054400363,0.009536176,0.000049395643,0.00033360973,0.00964092,0.0011039537,0.00019676816,0.29753387,0.6759213,0.000113865695],"about_ca_topic_score_codex":0.013059521,"about_ca_topic_score_gemma":0.013201759,"teacher_disagreement_score":0.022851398,"about_ca_system_score_codex":0.0068951077,"about_ca_system_score_gemma":0.017735636,"threshold_uncertainty_score":0.12085116},"labels":[],"label_agreement":null},{"id":"W2133838400","doi":"10.1002/eco.1705","title":"Assessing instream habitat suitability and hydraulic signatures of geomorphic units in a reconstructed single thread meandering channel","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Guelph","funders":"University of Guelph","keywords":"Hydrology (agriculture); Channel (broadcasting); STREAMS; Habitat; Channelized; Geology; Stream restoration; Environmental science; Ecology; Geotechnical engineering; Computer science","score_opus":0.04057999512078505,"score_gpt":0.24358879266515215,"score_spread":0.2030087975443671,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2133838400","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994659,0.0000074853197,0.00019565041,0.00000448666,6.477593e-7,0.000003881415,0.00010056671,0.000012546615,0.00020893084],"genre_scores_gemma":[0.99951947,0.0000066666557,0.00026143997,0.0000014292118,3.813447e-7,0.0000031761685,0.00009539835,0.0000020426487,0.00010995026],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99980146,0.000024585586,0.000012244768,0.00006383703,0.000041193256,0.000056678935],"domain_scores_gemma":[0.99962234,0.000061027284,0.000083344115,0.00004598347,0.00011574893,0.00007159705],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034269327,0.00021637317,0.00023633288,0.0010644571,0.00048507398,0.00083269057,0.00040623432,0.00033344183,0.00089229626],"category_scores_gemma":[0.0008693434,0.0001744184,0.00023283795,0.0009393499,0.00052998593,0.000345014,0.0003897138,0.00016816251,0.00013363837],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000093396906,0.000045066383,0.98037577,0.000011771649,0.000033252312,0.0001243637,0.0005267636,0.0062308563,0.0036843917,0.000080390404,0.000109670545,0.008684342],"study_design_scores_gemma":[0.0000027408848,0.00003128904,0.99013966,0.0000049983364,0.000011500093,0.000033694898,0.00043814594,0.008955724,0.00019877423,0.00002051999,0.00015667484,0.0000063107627],"about_ca_topic_score_codex":0.09983228,"about_ca_topic_score_gemma":0.30423912,"teacher_disagreement_score":0.09983228,"about_ca_system_score_codex":0.0014947498,"about_ca_system_score_gemma":0.0009089775,"threshold_uncertainty_score":0.19850242},"labels":[],"label_agreement":null},{"id":"W2134016536","doi":"10.1002/eco.1297","title":"Comparing rainfall interception in plantation trials of six tropical hardwood trees and wild sugar cane <i>Saccharum spontaneum</i> L.","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Forest ecology and management","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Winnipeg; University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada; Smithsonian Tropical Research Institute; Grantham Foundation for the Protection of the Environment","keywords":"Interception; Hardwood; Cane; Tropics; Agroforestry; Agronomy; Mathematics; Biology; Sugar; Environmental science; Botany; Ecology","score_opus":0.022308649635701474,"score_gpt":0.25138048843107674,"score_spread":0.22907183879537527,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2134016536","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99988425,0.000006316563,0.000025303509,7.859579e-7,6.804526e-7,0.0000058914925,0.00002254889,0.0000014990625,0.000052707277],"genre_scores_gemma":[0.99927086,0.000012722536,0.00024666562,0.000006397305,0.0000017315068,0.000026952108,0.00026534367,0.0000026188145,0.0001666216],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996817,0.000111409856,0.000031117605,0.00008131989,0.000052432515,0.000042011307],"domain_scores_gemma":[0.99899584,0.00033047015,0.00023127171,0.000073726966,0.00013455807,0.00023406996],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00075672194,0.00034790538,0.00039235712,0.0002507757,0.00038893402,0.00027261427,0.0003619722,0.0001581131,0.0006056002],"category_scores_gemma":[0.0006406237,0.00012377593,0.00029508257,0.0002396101,0.00024649876,0.00022409542,0.0003277258,0.00036023115,0.00011743064],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0074711265,0.0035377755,0.6179855,0.00017668528,0.00035070704,0.00036031025,0.0024864573,0.0019220167,0.34604168,0.000093297436,0.0001774548,0.019397045],"study_design_scores_gemma":[0.000089458415,0.009066498,0.9694724,0.000004457956,0.00007602112,0.00007351087,0.00039269112,0.002034556,0.01825486,0.000028028393,0.0004956661,0.000011800872],"about_ca_topic_score_codex":0.005725345,"about_ca_topic_score_gemma":0.01441246,"teacher_disagreement_score":0.005725345,"about_ca_system_score_codex":0.0004920078,"about_ca_system_score_gemma":0.0002236862,"threshold_uncertainty_score":0.01138407},"labels":[],"label_agreement":null},{"id":"W2134149668","doi":"10.1002/eco.1627","title":"Can the Canadian drought code predict low soil moisture anomalies in the mineral soil? An analysis of 15 years of soil moisture data from three forest ecosystems in Eastern Canada","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Ministère des Ressources naturelles et des Forêts; Ouranos; McGill University","funders":"","keywords":"Water content; Environmental science; Soil water; Growing season; Taiga; Ecosystem; Black spruce; Forest ecology; Agronomy; Forestry; Agroforestry; Hydrology (agriculture); Soil science; Ecology; Geography; Geology; Biology","score_opus":0.013608618568761477,"score_gpt":0.20048011244972597,"score_spread":0.1868714938809645,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2134149668","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9972784,0.00009990545,0.00015571805,0.00003304973,0.0000021366131,0.000008767269,0.0020907344,0.000016709464,0.00031459634],"genre_scores_gemma":[0.9966658,0.00006043549,0.00033193905,0.000014387539,0.0000013808856,0.0000061519163,0.0027432912,0.000004465591,0.00017211118],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997124,0.0000221679,0.000018021121,0.000060754097,0.00009110595,0.0000956479],"domain_scores_gemma":[0.99865746,0.00019440123,0.0001444973,0.000063228086,0.00071377866,0.00022649737],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006126185,0.00045895908,0.0004111618,0.0013787912,0.001190351,0.000909409,0.0007360108,0.00035931915,0.00048646727],"category_scores_gemma":[0.0012680233,0.00018820415,0.00053214334,0.0024912225,0.00046057536,0.0002807391,0.00040472162,0.00029754144,0.00010832718],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000099045166,0.000033338303,0.987805,0.00002514981,0.000117663025,0.00008883026,0.00022296922,0.003851681,0.0014661244,0.00005558177,0.00052395096,0.0057107746],"study_design_scores_gemma":[0.000003837045,0.00000731219,0.99325764,0.000005178655,0.000019512157,0.000013530236,0.00025457208,0.00573255,0.00023469463,0.000013102117,0.00044824134,0.000009809215],"about_ca_topic_score_codex":0.98439646,"about_ca_topic_score_gemma":0.98962504,"teacher_disagreement_score":0.015603542,"about_ca_system_score_codex":0.009285508,"about_ca_system_score_gemma":0.0068064583,"threshold_uncertainty_score":0.06737143},"labels":[],"label_agreement":null},{"id":"W2138777155","doi":"10.1002/eco.1390","title":"Novel ways to assess forested wetland restoration in North Carolina using ecohydrological patterns from reference sites","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Nipissing University","funders":"U.S. Army Corps of Engineers; U.S. Department of Agriculture","keywords":"Wetland; Hydrology (agriculture); Environmental science; Water table; Edaphic; Table (database); Plant community; Ecology; Soil water; Species richness; Groundwater; Geology; Database; Soil science","score_opus":0.06376222607328168,"score_gpt":0.2606184591497072,"score_spread":0.19685623307642552,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2138777155","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9938415,0.00008254413,0.0028589074,0.00003459773,0.0000041809612,0.000064134125,0.0005406741,0.0000945728,0.0024789597],"genre_scores_gemma":[0.99182194,0.000041844054,0.0069486136,0.0000174738,0.0000029999844,0.00007345373,0.00070055266,0.000012312776,0.00038088602],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9995746,0.000083719395,0.000030217669,0.00009982273,0.0001542234,0.00005744459],"domain_scores_gemma":[0.9981609,0.00022941706,0.00046138637,0.00014090478,0.0008510403,0.0001562726],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007669806,0.00026027104,0.00024090892,0.002323179,0.0006489172,0.00086819235,0.0006050792,0.00020408674,0.0007516315],"category_scores_gemma":[0.0019719696,0.00012965321,0.0001773911,0.0021210548,0.00033159714,0.00044786304,0.00063864456,0.00023178011,0.00014035145],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000081105376,0.00011790289,0.9531093,0.000055215936,0.00006416287,0.00014584913,0.0014142864,0.0022293283,0.007261941,0.00016314306,0.0008657054,0.03449203],"study_design_scores_gemma":[0.0000036379931,0.000035451874,0.9932462,0.000013765672,0.000013884915,0.00002772639,0.0011184787,0.0035116726,0.0009978584,0.000060361133,0.0009558775,0.000015039181],"about_ca_topic_score_codex":0.19748007,"about_ca_topic_score_gemma":0.44867283,"teacher_disagreement_score":0.19748007,"about_ca_system_score_codex":0.0010857364,"about_ca_system_score_gemma":0.0014323654,"threshold_uncertainty_score":0.3926612},"labels":[],"label_agreement":null},{"id":"W2140484743","doi":"10.1002/eco.1657","title":"Groundwater connectivity controls peat burn severity in the boreal plains","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":72,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo; McMaster University; University of Alberta","funders":"Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada","keywords":"Peat; Water table; Groundwater; Hydrology (agriculture); Hydrogeology; Geology; Groundwater flow; Environmental science; Outwash plain; Wetland; Boreal; Bog; Aquifer; Geomorphology; Glacier; Ecology","score_opus":0.014698374069816365,"score_gpt":0.23168468034170486,"score_spread":0.2169863062718885,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2140484743","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.999742,0.000014289336,0.000024814799,0.000006716581,5.3662e-7,0.0000011071884,0.00003081059,0.0000024320345,0.00017724674],"genre_scores_gemma":[0.9998628,0.000009123394,0.000028930752,0.000003428691,6.2125457e-7,7.3226676e-7,0.00003349446,6.574748e-7,0.00006018926],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988496,0.000019613746,0.000006216646,0.00002628081,0.000021151163,0.000041874715],"domain_scores_gemma":[0.9995702,0.00006303872,0.00017116117,0.000015262065,0.000050751485,0.0001296625],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017420283,0.000116067335,0.0001112538,0.00039833682,0.00032612722,0.00055677094,0.00016277225,0.00014016034,0.0006962323],"category_scores_gemma":[0.0005304198,0.00009658428,0.00010432121,0.0003201963,0.0003635133,0.0002131262,0.0002776458,0.0001320586,0.000054180393],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009675897,0.00003589227,0.99220157,0.0000044696926,0.000018625584,0.00008057806,0.00020692726,0.0003431107,0.0049762316,0.000055073324,0.000055784243,0.0019249887],"study_design_scores_gemma":[0.0000012531157,0.0000085028,0.99951243,7.739233e-7,0.0000021195299,0.000017978056,0.00015391392,0.00018308139,0.000058802743,0.000015337888,0.00004463765,0.0000010985568],"about_ca_topic_score_codex":0.1029924,"about_ca_topic_score_gemma":0.28128785,"teacher_disagreement_score":0.1029924,"about_ca_system_score_codex":0.00075549737,"about_ca_system_score_gemma":0.0004429591,"threshold_uncertainty_score":0.20478588},"labels":[],"label_agreement":null},{"id":"W2147025109","doi":"10.1002/eco.30","title":"Forest floor carbon dioxide fluxes within an upland‐peatland complex in the Western Boreal Plain, Canada","year":2008,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; Wilfrid Laurier University","funders":"","keywords":"Peat; Environmental science; Soil respiration; Boreal; Understory; Ecosystem respiration; Canopy; Growing season; Taiga; Hydrology (agriculture); Eddy covariance; Vegetation (pathology); Riparian zone; Forestry; Ecosystem; Soil water; Agronomy; Ecology; Geography; Soil science; Geology; Biology","score_opus":0.014356684209432381,"score_gpt":0.2096010204726287,"score_spread":0.19524433626319634,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2147025109","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99920386,0.000060225764,0.000026063077,0.000012013261,8.272131e-7,0.0000051892735,0.00035090285,0.0000044858775,0.00033640605],"genre_scores_gemma":[0.99904495,0.000054970023,0.00009989838,0.000009507289,8.180158e-7,0.000003904776,0.00036762565,0.0000016422729,0.00041655934],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99986947,0.000007433739,0.000004650948,0.000024551666,0.000033749144,0.000060101273],"domain_scores_gemma":[0.9997749,0.000012128943,0.00003419115,0.00000583764,0.00009467554,0.00007836485],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011897047,0.00021294542,0.00021273353,0.0008261309,0.0014077398,0.0008980386,0.0003344877,0.00014297628,0.00075168523],"category_scores_gemma":[0.00023402176,0.00015052191,0.00016114196,0.0011556767,0.00041252456,0.00018372326,0.00036671033,0.00015237772,0.00008692026],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001392192,0.00004429893,0.9851083,0.000030288806,0.00005661814,0.00029427122,0.0012973112,0.0005352042,0.004288018,0.0001079489,0.000505715,0.007592848],"study_design_scores_gemma":[0.0000017526747,0.0000045219517,0.9987214,0.0000033329907,0.0000046344126,0.00002357154,0.00066972716,0.0002720658,0.00006231935,0.0000070004703,0.00022732664,0.000002394252],"about_ca_topic_score_codex":0.985458,"about_ca_topic_score_gemma":0.99518424,"teacher_disagreement_score":0.014541984,"about_ca_system_score_codex":0.007684338,"about_ca_system_score_gemma":0.005932683,"threshold_uncertainty_score":0.055754006},"labels":[],"label_agreement":null},{"id":"W2148637188","doi":"10.1002/eco.212","title":"Snow accumulation following forest disturbance","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fire effects on ecosystems","field":"Environmental Science","cited_by":80,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge","funders":"Natural Resources Canada","keywords":"Interception; Snow; Environmental science; Snowmelt; Salvage logging; Canopy; Surface runoff; Disturbance (geology); Canopy interception; Watershed; Logging; Infestation; Hydrology (agriculture); Ecology; Physical geography; Ecosystem; Forest ecology; Throughfall; Geography; Agronomy; Biology; Geology; Meteorology","score_opus":0.0209590336790036,"score_gpt":0.233799848094513,"score_spread":0.21284081441550942,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2148637188","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9967462,0.000110447,0.00010066043,0.000012278233,0.0000034161817,0.000011878192,0.00096261955,0.000010162533,0.0020422977],"genre_scores_gemma":[0.997863,0.00006110474,0.0000668755,0.000008437477,0.0000032019705,0.000005357144,0.0011110149,0.0000017745331,0.0008791822],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999093,0.000008213752,0.000006060375,0.000019161213,0.000030165122,0.000027042266],"domain_scores_gemma":[0.9996867,0.00003474265,0.00012236564,0.000012367382,0.00008626157,0.00005749231],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010515266,0.00011920247,0.00013058327,0.00043299416,0.00037267662,0.00042812582,0.00012488596,0.00009123176,0.0021434797],"category_scores_gemma":[0.00047474317,0.000056952427,0.000109897635,0.0005049497,0.00010951569,0.00011027859,0.00022746914,0.00012490847,0.00021133474],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028618658,0.000041256226,0.969327,0.00005153675,0.000062410276,0.00021970557,0.00034044456,0.0006845965,0.005813527,0.000033466913,0.00056982314,0.022570217],"study_design_scores_gemma":[6.4902747e-7,0.000012286445,0.99955636,0.0000017029458,0.00000206945,0.000022803379,0.000048330443,0.00008378952,0.00008958956,0.000008512196,0.00017316398,7.1147053e-7],"about_ca_topic_score_codex":0.12196223,"about_ca_topic_score_gemma":0.3210072,"teacher_disagreement_score":0.12196223,"about_ca_system_score_codex":0.0009865355,"about_ca_system_score_gemma":0.00043301957,"threshold_uncertainty_score":0.24250466},"labels":[],"label_agreement":null},{"id":"W2149002452","doi":"10.1002/eco.1362","title":"An integrated modelling framework of catchment‐scale ecohydrological processes: 1. Model description and tests over an energy‐limited watershed","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":89,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institut National de la Recherche Scientifique","funders":"National Center for Atmospheric Research; U.S. Department of Energy","keywords":"Snowmelt; Environmental science; Watershed; Hydrology (agriculture); Surface runoff; Flow routing; Drainage basin; Hydrological modelling; Catchment hydrology; Routing (electronic design automation); Snow; Geology; Geomorphology; Computer science; Climatology; Geography; Ecology","score_opus":0.015113728787422981,"score_gpt":0.22616523835114696,"score_spread":0.21105150956372398,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2149002452","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.49572828,0.0004261402,0.4825251,0.0007555929,0.000042577336,0.00031649345,0.0028902006,0.0011937085,0.016121881],"genre_scores_gemma":[0.94343233,0.0002628246,0.05268923,0.000058643203,0.000024504152,0.0003144969,0.0007455359,0.00007939859,0.0023929062],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998386,0.00004489008,0.000014210968,0.000041860672,0.000035538927,0.000024881228],"domain_scores_gemma":[0.9998066,0.00005721738,0.000024221312,0.000024981075,0.000067382294,0.000019697722],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042272685,0.00050304586,0.00044862297,0.000343557,0.00042758882,0.0012084985,0.0013381591,0.00082289043,0.0014567683],"category_scores_gemma":[0.0008239524,0.00036895563,0.00057143223,0.0008262352,0.00057537406,0.0011456263,0.0009200567,0.00066956517,0.00017604714],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00001285463,0.000031308013,0.0013833223,0.000009487571,0.000015796528,0.000030362455,0.00002720819,0.990638,0.0008757026,0.0036582153,0.00016836858,0.003149266],"study_design_scores_gemma":[0.000009224881,0.000009155746,0.0005671981,0.0000024987746,0.0000069554867,0.0000039820256,0.000009030491,0.9975109,0.00015767364,0.0011472035,0.0005723651,0.0000038218404],"about_ca_topic_score_codex":0.05316052,"about_ca_topic_score_gemma":0.030464226,"teacher_disagreement_score":0.05316052,"about_ca_system_score_codex":0.0018560924,"about_ca_system_score_gemma":0.0017832884,"threshold_uncertainty_score":0.10570216},"labels":[],"label_agreement":null},{"id":"W2150631748","doi":"10.1002/eco.272","title":"Slope effects on the spatial variations in duff moisture","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Calgary","funders":"","keywords":"Transect; Moisture; Spatial variability; Environmental science; Water content; Soil science; Interception; Hydrology (agriculture); Geology; Ecology; Geography; Geotechnical engineering; Meteorology; Mathematics","score_opus":0.006392279384108017,"score_gpt":0.17203525509427559,"score_spread":0.16564297571016756,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2150631748","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99922204,0.00007149382,0.00020548016,0.0000025485742,0.0000010919631,0.000001609662,0.00016216373,0.000009038359,0.00032463428],"genre_scores_gemma":[0.9996177,0.000024258688,0.000085044776,0.0000021619223,9.179761e-7,0.0000018525333,0.00017678717,0.000003207191,0.00008807815],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99987674,0.000023702472,0.0000083058885,0.00004649246,0.000024338373,0.000020375053],"domain_scores_gemma":[0.9993967,0.00023368023,0.00015023793,0.00005812951,0.00011763354,0.000043730735],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018484025,0.000118199285,0.00021152888,0.0005630243,0.00013928793,0.0003413344,0.00011591791,0.00014050893,0.0006719964],"category_scores_gemma":[0.0006928302,0.00013948743,0.00018552906,0.00066134945,0.00017715886,0.00016548905,0.00021057382,0.00012143531,0.0001518069],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005133683,0.000029766468,0.8777804,0.00005929951,0.00013460715,0.0003754146,0.000517715,0.0017443106,0.103345014,0.00005055592,0.00014187008,0.015307671],"study_design_scores_gemma":[9.452805e-7,0.000019332581,0.998304,0.0000014854537,0.0000068872314,0.00005592889,0.00004288756,0.0004098334,0.0010319166,0.0000070446426,0.00011750773,0.0000023117368],"about_ca_topic_score_codex":0.0040441365,"about_ca_topic_score_gemma":0.0070908396,"teacher_disagreement_score":0.0040441365,"about_ca_system_score_codex":0.0001258147,"about_ca_system_score_gemma":0.00008209793,"threshold_uncertainty_score":0.008041203},"labels":[],"label_agreement":null},{"id":"W2151003140","doi":"10.1002/eco.118","title":"Measurement and modelling of bryophyte evaporation in a boreal forest chronosequence","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":42,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Manitoba","funders":"National Science Foundation","keywords":"Bryophyte; Chronosequence; Moss; Sphagnum; Bog; Environmental science; Evapotranspiration; Taiga; Boreal; Litter; Hydrology (agriculture); Peat; Ecology; Atmospheric sciences; Soil water; Soil science; Biology; Geology","score_opus":0.0173081421531699,"score_gpt":0.21363878043439438,"score_spread":0.1963306382812245,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2151003140","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9973296,0.00007018427,0.0018655788,0.000008183527,0.0000044838685,0.000011147441,0.0002455601,0.00007470906,0.00039061045],"genre_scores_gemma":[0.9980254,0.000020314415,0.00162522,0.0000034932507,0.0000018780285,0.000012291694,0.00023810772,0.000007257281,0.00006604834],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99985063,0.000025768953,0.000011060556,0.00006316113,0.000027602027,0.00002171611],"domain_scores_gemma":[0.99974483,0.00006932171,0.00004488737,0.000039213937,0.000059453625,0.000042211595],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007018058,0.0003830076,0.0002572744,0.00033485817,0.0004828311,0.0005200786,0.0005308593,0.00038024323,0.00035984692],"category_scores_gemma":[0.0005376365,0.00024956162,0.00042333556,0.00038534126,0.00020375426,0.00043931144,0.00019097117,0.00022832438,0.00009524238],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000683895,0.00017420421,0.69764113,0.00010959044,0.000263602,0.0002249394,0.00028880974,0.241182,0.039513193,0.00031905095,0.00043184307,0.019167664],"study_design_scores_gemma":[0.000055757737,0.00012678058,0.7396288,0.000009303375,0.00005536457,0.0001253707,0.00006568557,0.25444448,0.004288751,0.0000830688,0.0010714094,0.000045186902],"about_ca_topic_score_codex":0.09853593,"about_ca_topic_score_gemma":0.12745216,"teacher_disagreement_score":0.09853593,"about_ca_system_score_codex":0.0010279767,"about_ca_system_score_gemma":0.0006849458,"threshold_uncertainty_score":0.19592476},"labels":[],"label_agreement":null},{"id":"W2151238050","doi":"10.1002/eco.192","title":"How does macroinvertebrate taxonomic resolution influence ecohydrological relationships in riverine ecosystems","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Freshwater macroinvertebrate diversity and ecology","field":"Environmental Science","cited_by":61,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of New Brunswick","funders":"Loughborough University","keywords":"River ecosystem; Taxonomic rank; Dominance (genetics); Streamflow; Benthic zone; Biodiversity; Ecology; Taxon; Invertebrate; Environmental science; Ecosystem; Geography; Biology; Drainage basin","score_opus":0.025413339557403568,"score_gpt":0.174458834951602,"score_spread":0.14904549539419842,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2151238050","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99917066,0.00009041537,0.000272378,0.000033341643,0.0000013696182,0.0000023851442,0.000044201468,0.0000045554825,0.0003807586],"genre_scores_gemma":[0.9996594,0.000032260978,0.00014805826,0.0000125917095,0.0000027258923,0.0000010817565,0.000058993788,0.000002338518,0.00008262812],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99924755,0.0003961116,0.000041879957,0.00013431451,0.00011341176,0.000066675915],"domain_scores_gemma":[0.9928973,0.0041797226,0.0015753062,0.00043159068,0.0005150977,0.00040100183],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0020500058,0.00015336309,0.00023035578,0.00083302945,0.00036126393,0.0011660951,0.00029763934,0.00037786242,0.0017452185],"category_scores_gemma":[0.008342095,0.00028458497,0.0003049396,0.00056834397,0.00066804345,0.0009737182,0.0005255806,0.00033214103,0.00030255198],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000050817278,0.000033154585,0.98818725,0.000021879616,0.0001633089,0.00006290033,0.0006136024,0.0010995668,0.0023011616,0.000097330834,0.00011250397,0.007256509],"study_design_scores_gemma":[6.0653326e-7,0.000022462267,0.998437,0.0000031768495,0.0000068339064,0.000021193293,0.00020387466,0.0010746703,0.00007654244,0.00007226974,0.00007778288,0.000003516787],"about_ca_topic_score_codex":0.0041448423,"about_ca_topic_score_gemma":0.008484934,"teacher_disagreement_score":0.0041448423,"about_ca_system_score_codex":0.00021113032,"about_ca_system_score_gemma":0.00018876055,"threshold_uncertainty_score":0.010841608},"labels":[],"label_agreement":null},{"id":"W2151823175","doi":"10.1002/eco.139","title":"Microtopographical and canopy cover controls on moss carbon dioxide exchange in a western Boreal Plain peatland","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; University of Waterloo; Wilfrid Laurier University","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta-Pacific Forest Industries","keywords":"Sphagnum; Environmental science; Microclimate; Peat; Evapotranspiration; Hydrology (agriculture); Canopy; Moss; Wetland; Lawn; Growing season; Subalpine forest; Permafrost; Ecosystem; Ecology; Geology; Biology","score_opus":0.004507789068331979,"score_gpt":0.21091539904453516,"score_spread":0.20640760997620317,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2151823175","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998362,0.000015973592,0.000014805005,0.0000025755742,2.9152852e-7,0.0000013173565,0.000026536914,0.0000014927334,0.000100834404],"genre_scores_gemma":[0.9997316,0.000014821312,0.0000445319,0.0000034798575,3.6576654e-7,0.0000016759634,0.000058138787,8.421095e-7,0.00014460692],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993587,0.000006886842,0.0000026279527,0.000013998068,0.000015170723,0.000025470323],"domain_scores_gemma":[0.9998229,0.00001685652,0.000032858432,0.0000062052786,0.00003883696,0.00008231222],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001082132,0.00014442723,0.00017014328,0.00039660223,0.00055611617,0.00045914264,0.0001957152,0.00010012729,0.00051589526],"category_scores_gemma":[0.0001707656,0.000119202814,0.000093456794,0.00027178667,0.00035411384,0.00011735944,0.00022234468,0.0000997188,0.000056947436],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00040362662,0.000120177865,0.90951,0.000023140856,0.00005680987,0.0002865476,0.0010615637,0.0004263675,0.08180799,0.0000932195,0.00017237767,0.006038122],"study_design_scores_gemma":[0.0000011253986,0.000009076135,0.99948066,7.082384e-7,0.0000020051805,0.000015886544,0.00019118773,0.00011065382,0.00013147749,0.0000046394484,0.00005176506,8.439746e-7],"about_ca_topic_score_codex":0.5747096,"about_ca_topic_score_gemma":0.83475107,"teacher_disagreement_score":0.5747096,"about_ca_system_score_codex":0.0015624996,"about_ca_system_score_gemma":0.0009844196,"threshold_uncertainty_score":0.85559005},"labels":[],"label_agreement":null},{"id":"W2153809173","doi":"10.1002/eco.129","title":"Topographical and ecohydrological controls on land surface temperature in an alpine catchment","year":2010,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":83,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Environment and Climate Change Canada","funders":"Provincia autonoma di Bolzano - Alto Adige","keywords":"Environmental science; Terrain; Land cover; Vegetation (pathology); Energy budget; Climate model; Water content; Spatial distribution; Atmospheric sciences; Hydrology (agriculture); Climate change; Remote sensing; Land use; Geology; Geography","score_opus":0.014921351818193207,"score_gpt":0.2423021546437804,"score_spread":0.2273808028255872,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2153809173","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99962556,0.000009363314,0.00009191853,0.000010568609,5.157839e-7,0.0000017436417,0.00006709574,0.000009519738,0.00018380069],"genre_scores_gemma":[0.9998411,0.0000078167195,0.00003982869,0.0000014540149,7.7573276e-7,0.0000016242319,0.000058767975,0.0000014721818,0.000047057754],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988127,0.00004478347,0.0000060494012,0.000027837359,0.000012995114,0.000026993686],"domain_scores_gemma":[0.9997634,0.0001089234,0.000037791222,0.000021077236,0.000031749583,0.000037057802],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002640238,0.00016126539,0.00020469067,0.00035373188,0.0002082368,0.0007775135,0.00023655177,0.00037044892,0.0007845396],"category_scores_gemma":[0.0006771516,0.00014996677,0.00032365395,0.00039168072,0.00032130175,0.00025907325,0.000269333,0.00014919684,0.000095709984],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003881852,0.0002706138,0.6326863,0.0000433063,0.00014721496,0.00074328267,0.00029617187,0.3457631,0.011231961,0.0007332719,0.000401021,0.0072956206],"study_design_scores_gemma":[0.000067214656,0.00008673563,0.59578663,0.0000075248236,0.000028961977,0.00007265697,0.000257476,0.40244353,0.00064350036,0.00023593337,0.00035381672,0.000016030668],"about_ca_topic_score_codex":0.021852788,"about_ca_topic_score_gemma":0.011516577,"teacher_disagreement_score":0.021852788,"about_ca_system_score_codex":0.0006446224,"about_ca_system_score_gemma":0.00023918555,"threshold_uncertainty_score":0.04345119},"labels":[],"label_agreement":null},{"id":"W2154943481","doi":"10.1002/eco.13","title":"Hydroecological responses of the Athabasca Delta, Canada, to changes in river flow and climate during the 20th century","year":2008,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":68,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Regina; University of Waterloo; Wilfrid Laurier University","funders":"University at Buffalo","keywords":"Delta; Hydrology (agriculture); Wetland; Environmental science; Floodplain; Geology; Climate change; Flooding (psychology); Flood myth; Groundwater recharge; Ecology; Groundwater; Oceanography; Geography; Aquifer","score_opus":0.007052332170516002,"score_gpt":0.18909284147844166,"score_spread":0.18204050930792565,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2154943481","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99710566,0.00018199426,0.000043353255,0.00017484065,0.0000026864986,0.000005137945,0.0006832915,0.000004861532,0.0017981324],"genre_scores_gemma":[0.9991726,0.000109010296,0.00005376977,0.000020695683,0.0000013059794,0.000002266935,0.000248743,0.0000012491251,0.00039030844],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99987495,0.000011334943,0.0000052502673,0.000026184603,0.000034637724,0.00004753209],"domain_scores_gemma":[0.9997435,0.000009400102,0.000044180902,0.000009050479,0.00013518285,0.00005868518],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015023399,0.000112011396,0.00007714706,0.00089903217,0.001136229,0.00057566556,0.00030724207,0.00014179375,0.00083260884],"category_scores_gemma":[0.00042273107,0.00006673084,0.00012450285,0.0011851754,0.00047754557,0.00014035626,0.00035279174,0.00015020088,0.000049522565],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008540893,0.00003302192,0.9755162,0.000031691696,0.000065632856,0.0003630503,0.0014511925,0.0013966381,0.0054394095,0.0008594306,0.00086999167,0.013888355],"study_design_scores_gemma":[0.0000021474025,0.0000040375307,0.9975853,0.000004153791,0.0000040203863,0.000032009222,0.0005564062,0.00028486853,0.0001425073,0.000042792897,0.0013368279,0.0000049445184],"about_ca_topic_score_codex":0.9628201,"about_ca_topic_score_gemma":0.9840481,"teacher_disagreement_score":0.037179887,"about_ca_system_score_codex":0.009272602,"about_ca_system_score_gemma":0.0060292454,"threshold_uncertainty_score":0.07479763},"labels":[],"label_agreement":null},{"id":"W2155001774","doi":"10.1002/eco.267","title":"Fuzzy constrained optimization of eco‐friendly reservoir operation using self‐adaptive genetic algorithm: a case study of a cascade reservoir system in the Yalong River, China","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Water resources management and optimization","field":"Engineering","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Regina","funders":"","keywords":"Hydropower; Fuzzy logic; Cascade; Genetic algorithm; Mathematical optimization; Computer science; Crossover; Particle swarm optimization; Engineering; Algorithm; Mathematics; Artificial intelligence","score_opus":0.018540267116614068,"score_gpt":0.21460153321876957,"score_spread":0.1960612661021555,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2155001774","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9387115,0.00015350114,0.0563208,0.00018634174,0.000013934081,0.000107840155,0.000071406175,0.000085338936,0.00434924],"genre_scores_gemma":[0.9943469,0.00003722341,0.0049380963,0.000006383765,0.0000016083264,0.000030357982,0.00001821561,0.00000384014,0.0006173801],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99983275,0.000051916108,0.0000100345615,0.000026500002,0.000035403405,0.000043347674],"domain_scores_gemma":[0.9996824,0.00017477603,0.00004051322,0.000013626019,0.00005554108,0.000033103188],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00056712644,0.0007269962,0.0006091357,0.0005698954,0.00080847216,0.0008581717,0.00078651874,0.0011737787,0.00087813527],"category_scores_gemma":[0.00075378554,0.00036917973,0.0006506707,0.0006064091,0.0005671027,0.00039708495,0.0005354814,0.00041073107,0.00004356088],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000019564255,0.00003256699,0.0012197129,0.000018136858,0.000014168658,0.00027895675,0.000024334415,0.99470043,0.0010131309,0.00048257216,0.00007283672,0.0021235738],"study_design_scores_gemma":[0.000007233779,0.000026077356,0.00034568654,0.0000012421722,0.000005343767,0.000008382908,0.000020173784,0.99919087,0.00022936882,0.000119264005,0.0000432604,0.0000030374204],"about_ca_topic_score_codex":0.056196157,"about_ca_topic_score_gemma":0.040799942,"teacher_disagreement_score":0.056196157,"about_ca_system_score_codex":0.0015501952,"about_ca_system_score_gemma":0.0019793918,"threshold_uncertainty_score":0.111738086},"labels":[],"label_agreement":null},{"id":"W2156672450","doi":"10.1002/eco.1525","title":"Ecohydrological flow networks in the subsurface","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"University of North Carolina at Chapel Hill; University of Arizona","keywords":"Computer science; Flow (mathematics); Set (abstract data type); Subsurface flow; Function (biology); Hydrology (agriculture); Component (thermodynamics); Environmental science; Aggregate (composite); Multidisciplinary approach; Natural (archaeology); Range (aeronautics); Geology; Groundwater; Geotechnical engineering; Engineering","score_opus":0.006651582698508039,"score_gpt":0.19715138314382755,"score_spread":0.1904998004453195,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2156672450","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9875497,0.000055823744,0.011283603,0.000054526277,0.000002154831,0.000008686181,0.0000920817,0.000028796916,0.0009246599],"genre_scores_gemma":[0.9978733,0.000028623672,0.0018691913,0.0000030107535,0.0000010109817,0.000006033282,0.000046128665,0.0000015081594,0.00017130347],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.99994457,0.000017221893,0.000002363452,0.000017171087,0.0000075549938,0.000011168336],"domain_scores_gemma":[0.99971336,0.00009559985,0.000082857325,0.000019038345,0.000053155567,0.00003604783],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021758799,0.00006400425,0.0000803202,0.0005802543,0.00015513615,0.0004014248,0.000115302646,0.00015872669,0.000591387],"category_scores_gemma":[0.0007759657,0.00008053403,0.000067965055,0.00036570537,0.00056209025,0.0004300136,0.000253258,0.000106111176,0.000044866254],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00024297253,0.00017235502,0.15708971,0.00010569697,0.00005148793,0.0002532519,0.000696842,0.6273404,0.079665236,0.07885404,0.001471762,0.054056216],"study_design_scores_gemma":[0.000023959536,0.000083516374,0.105832025,0.00001439982,0.000012712429,0.00008555971,0.0003621111,0.84938926,0.0045962404,0.03767078,0.0019098511,0.000019633988],"about_ca_topic_score_codex":0.003743983,"about_ca_topic_score_gemma":0.0032353634,"teacher_disagreement_score":0.003743983,"about_ca_system_score_codex":0.00048999186,"about_ca_system_score_gemma":0.0003095061,"threshold_uncertainty_score":0.0074443817},"labels":[],"label_agreement":null},{"id":"W2158174041","doi":"10.1002/eco.1408","title":"The role of pre‐event canopy storage in throughfall and stemflow by using isotopic tracers","year":2013,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":78,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"","keywords":"Throughfall; Stemflow; Interception; Environmental science; Canopy interception; Canopy; Hydrology (agriculture); Precipitation; Atmospheric sciences; Soil water; Soil science; Geology; Ecology; Meteorology; Geography","score_opus":0.00283168382583016,"score_gpt":0.18297340744803128,"score_spread":0.18014172362220113,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2158174041","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.998468,0.0000458296,0.0009292713,0.0000065478835,0.0000016541596,0.0000044359986,0.00012476469,0.000014949854,0.00040452718],"genre_scores_gemma":[0.99882466,0.00005060565,0.0006867603,0.000003569754,0.0000020526584,0.000005863602,0.00018060813,0.000007924213,0.00023789014],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999169,0.000011041011,0.0000065273994,0.000030044139,0.000020369518,0.000015025931],"domain_scores_gemma":[0.9997954,0.00006590834,0.000064584136,0.0000220855,0.00003089869,0.00002113711],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000258759,0.00017393245,0.00020036449,0.00046275376,0.00028686912,0.0006304213,0.00028942566,0.00017482867,0.00071680936],"category_scores_gemma":[0.00048879784,0.00018087214,0.00011581923,0.0003843408,0.00017095638,0.0006070605,0.00022508003,0.00014696017,0.00006600215],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00039896232,0.000118494085,0.67444605,0.000047927926,0.0000847605,0.000120116994,0.00034865533,0.0016299094,0.29689446,0.00044500636,0.00008429971,0.025381343],"study_design_scores_gemma":[0.000013319596,0.0000924029,0.95149183,0.000010714729,0.000028620037,0.000099472505,0.00013390736,0.010325971,0.03678911,0.0002419208,0.00075871503,0.000013988802],"about_ca_topic_score_codex":0.011938994,"about_ca_topic_score_gemma":0.022791399,"teacher_disagreement_score":0.011938994,"about_ca_system_score_codex":0.0004693325,"about_ca_system_score_gemma":0.00036063045,"threshold_uncertainty_score":0.02373898},"labels":[],"label_agreement":null},{"id":"W2160172316","doi":"10.1002/eco.1313","title":"Ecohydrology of <i>Sphagnum</i> moss hummocks: mechanisms of capitula water supply and simulated effects of evaporation","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":169,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Sphagnum; Desiccation; Environmental science; Water content; Soil water; Hydraulic conductivity; Hydrology (agriculture); Soil science; Ecology; Biology; Geology; Peat","score_opus":0.003155812896634433,"score_gpt":0.19401353111777675,"score_spread":0.1908577182211423,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2160172316","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99883753,0.000017586428,0.00034200493,0.000022110638,0.0000029387966,0.0000050302706,0.00010710861,0.0000316108,0.000634008],"genre_scores_gemma":[0.9996531,0.000009376546,0.00017029385,0.000005536792,4.8588015e-7,0.000004709943,0.000046610257,0.0000048234665,0.00010509855],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999554,0.000006628897,0.0000023009727,0.000013602535,0.0000054026195,0.000016761907],"domain_scores_gemma":[0.9998604,0.00004637258,0.000023391054,0.000013148625,0.000019964353,0.00003674413],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011367936,0.00036534385,0.0002636852,0.0002856072,0.0003899468,0.00046529333,0.00060808606,0.0007137219,0.0010390646],"category_scores_gemma":[0.000281083,0.00021835841,0.00048133786,0.00015926885,0.00032341492,0.00025588003,0.00031295727,0.00027630592,0.00012293045],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021560455,0.00014527336,0.039164152,0.00008277355,0.00007865167,0.00045805963,0.00011505732,0.8887535,0.06738045,0.00054645655,0.00029551095,0.0027646155],"study_design_scores_gemma":[0.00005471319,0.00011062882,0.027409302,0.000010488265,0.000027012662,0.000042623884,0.00011078159,0.96260667,0.009177498,0.00011839866,0.00030885328,0.00002306953],"about_ca_topic_score_codex":0.027146831,"about_ca_topic_score_gemma":0.012546167,"teacher_disagreement_score":0.027146831,"about_ca_system_score_codex":0.001037996,"about_ca_system_score_gemma":0.0005368691,"threshold_uncertainty_score":0.05397761},"labels":[],"label_agreement":null},{"id":"W2161510334","doi":"10.1002/eco.1662","title":"Diatoms as a tracer of hydrological connectivity: are they supply limited?","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Diatoms and Algae Research","field":"Materials Science","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Fonds De La Recherche Scientifique - FNRS; Fonds National de la Recherche Luxembourg","keywords":"Diatom; Riparian zone; Environmental science; Population; Hydrology (agriculture); Ecology; Geology; Biology; Habitat","score_opus":0.03549241332262102,"score_gpt":0.29197573266306776,"score_spread":0.2564833193404467,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2161510334","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99601585,0.0003301852,0.0024006506,0.000098967175,0.0000036106455,0.000009165515,0.00032141356,0.000016064409,0.0008040582],"genre_scores_gemma":[0.999223,0.00008514248,0.0004107556,0.000017377572,0.0000064277897,0.000008009949,0.00015404554,0.000004014421,0.000091093134],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997886,0.00007276515,0.000017237133,0.000046366065,0.000054300093,0.000020695647],"domain_scores_gemma":[0.99787354,0.0012463953,0.0004812475,0.00011106482,0.00014252073,0.00014524539],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007071404,0.00015931745,0.00045952463,0.00057165365,0.00020662748,0.00060521415,0.0003589434,0.00028242075,0.00094694976],"category_scores_gemma":[0.0030115643,0.00024592268,0.00010853097,0.0006325952,0.00042725718,0.0009614703,0.00041914717,0.00025616074,0.00008196918],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020079086,0.000033339253,0.96355695,0.000117154574,0.00011228673,0.00008808747,0.00013189064,0.0052749664,0.023210997,0.0005569076,0.00016433772,0.006552242],"study_design_scores_gemma":[0.000022913871,0.000109502005,0.96283704,0.000019051184,0.00004750704,0.00007951556,0.00026800056,0.03119672,0.0034754395,0.0011145422,0.00081827084,0.000011433441],"about_ca_topic_score_codex":0.004684143,"about_ca_topic_score_gemma":0.007972189,"teacher_disagreement_score":0.004684143,"about_ca_system_score_codex":0.00048207093,"about_ca_system_score_gemma":0.0001367394,"threshold_uncertainty_score":0.009313762},"labels":[],"label_agreement":null},{"id":"W2162377418","doi":"10.1002/eco.1566","title":"Preserving, augmenting, and creating cold‐water thermal refugia in rivers: concepts derived from research on the Miramichi River, New Brunswick (Canada)","year":2014,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":183,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of New Brunswick","funders":"Natural Sciences and Engineering Research Council of Canada; Canada Research Chairs","keywords":"Environmental science; Riparian zone; Context (archaeology); Tributary; Hydrology (agriculture); Climate change; Ecology; Geography; Habitat; Geology","score_opus":0.019143613716487543,"score_gpt":0.25684700845276787,"score_spread":0.23770339473628033,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2162377418","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6187487,0.028991738,0.040218208,0.03002396,0.00020454127,0.0005894059,0.0009997655,0.00013821699,0.28008553],"genre_scores_gemma":[0.94027334,0.012640288,0.027221404,0.000950688,0.000023190663,0.00020791119,0.00017454995,0.00002673384,0.018481892],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"observational","domain_scores_codex":[0.9995332,0.00013035844,0.000022602106,0.000085237,0.000096597774,0.00013200505],"domain_scores_gemma":[0.9989581,0.00020745843,0.0001321873,0.00004686301,0.00046098974,0.00019437927],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001122715,0.00038065013,0.00020637288,0.0014747123,0.0034880158,0.0036242416,0.0015480239,0.00038954982,0.0018878396],"category_scores_gemma":[0.0009832559,0.0001688935,0.00031558546,0.0024385718,0.008297886,0.0014493432,0.0012946948,0.0008190208,0.00008106189],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008555813,0.00018848351,0.22797304,0.0010705155,0.0000837347,0.0013351087,0.042310104,0.011314805,0.0059016426,0.47479978,0.010241858,0.22469532],"study_design_scores_gemma":[0.000037516038,0.00023876083,0.4284467,0.0014498925,0.0002300094,0.0006720472,0.21173023,0.012373844,0.0030189953,0.08180714,0.25977805,0.00021676713],"about_ca_topic_score_codex":0.95857733,"about_ca_topic_score_gemma":0.9895683,"teacher_disagreement_score":0.049913414,"about_ca_system_score_codex":0.049913414,"about_ca_system_score_gemma":0.050636046,"threshold_uncertainty_score":0.36214888},"labels":[],"label_agreement":null},{"id":"W2162865647","doi":"10.1002/eco.36","title":"Moisture controls on carbon dioxide dynamics of peat‐<i>Sphagnum</i> monoliths","year":2009,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":86,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo; University of Calgary","funders":"","keywords":"Sphagnum; Peat; Water content; Environmental science; Moss; Water table; Mire; Moisture; Carbon dioxide; Bog; Hydrology (agriculture); Soil science; Atmospheric sciences; Botany; Geology; Ecology; Chemistry; Groundwater; Biology","score_opus":0.00382913483692574,"score_gpt":0.2020602410086639,"score_spread":0.19823110617173817,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2162865647","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995963,0.000044108852,0.00010596503,0.0000035404537,0.000001373653,0.0000028540574,0.000042018655,0.000010543073,0.0001932919],"genre_scores_gemma":[0.99967015,0.000017362796,0.00009898096,0.0000055538935,7.861667e-7,0.0000027824967,0.000063984546,0.0000034131126,0.0001369557],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.999944,0.0000034177972,0.000002538235,0.000022534414,0.000010193561,0.000017342214],"domain_scores_gemma":[0.99985063,0.00002545072,0.000031041756,0.000010319507,0.00002426816,0.000058294954],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010627674,0.00021465408,0.00020150424,0.00014402127,0.0002902173,0.00041394145,0.00020757153,0.00018422338,0.00051314046],"category_scores_gemma":[0.00014104397,0.00015321122,0.0001581443,0.00007676546,0.00023536597,0.00024631363,0.0002533237,0.00025199805,0.00009671376],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000119779135,0.000023203618,0.008394811,0.00001842898,0.000009724457,0.000041218987,0.000041163716,0.00016697797,0.9901558,0.000031718366,0.000019484085,0.000977695],"study_design_scores_gemma":[0.000019851668,0.0003624893,0.72641,0.000009850239,0.000031548254,0.00016868318,0.0003366113,0.0062504816,0.2649756,0.00012211034,0.0012927747,0.000020034786],"about_ca_topic_score_codex":0.006918448,"about_ca_topic_score_gemma":0.0077043176,"teacher_disagreement_score":0.006918448,"about_ca_system_score_codex":0.00049371534,"about_ca_system_score_gemma":0.00020865658,"threshold_uncertainty_score":0.013756394},"labels":[],"label_agreement":null},{"id":"W2164206824","doi":"10.1002/eco.229","title":"The DigiBog peatland development model 2: ecohydrological simulations in 2D","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":80,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"Queen Mary University of London","keywords":"Peat; Bog; Environmental science; Anoxic waters; Hydraulic conductivity; Decomposition; Hydrology (agriculture); Soil science; Geology; Ecology; Soil water; Geotechnical engineering","score_opus":0.02521230422763369,"score_gpt":0.22468620832766314,"score_spread":0.19947390410002946,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2164206824","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9590483,0.00018776084,0.01582256,0.0005073736,0.000096077645,0.00014434288,0.004265689,0.0010649213,0.018863117],"genre_scores_gemma":[0.9759905,0.00013785712,0.01881948,0.00014614675,0.000021308837,0.00021708828,0.0020985047,0.00019069093,0.0023785117],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998709,0.000049200553,0.000005460163,0.000018983505,0.000019397541,0.000036009696],"domain_scores_gemma":[0.99953926,0.00024960694,0.000032325464,0.000034301145,0.00004963063,0.0000948437],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00050883845,0.00077640393,0.0007086931,0.00047279042,0.00045638814,0.00089038705,0.0012334578,0.0012726348,0.0026737014],"category_scores_gemma":[0.0010617605,0.0004930706,0.00074845756,0.0004042658,0.0006093337,0.0005162054,0.0008428202,0.0008583393,0.0002440978],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000845366,0.00008731453,0.0023369703,0.000025801859,0.000020992751,0.00006829751,0.000025859279,0.99383116,0.0004426715,0.0009683752,0.00053510594,0.0015728304],"study_design_scores_gemma":[0.00007839508,0.000024234647,0.00060487527,0.0000054092397,0.000005366449,0.00000691177,0.000014439063,0.99791306,0.0002460048,0.00044105103,0.0006515257,0.00000869022],"about_ca_topic_score_codex":0.034465503,"about_ca_topic_score_gemma":0.02451912,"teacher_disagreement_score":0.034465503,"about_ca_system_score_codex":0.0010635717,"about_ca_system_score_gemma":0.0009894487,"threshold_uncertainty_score":0.068529785},"labels":[],"label_agreement":null},{"id":"W2168026490","doi":"10.1002/eco.191","title":"Conceptual frameworks in peatland ecohydrology: looking beyond the two‐layered (acrotelm–catotelm) model","year":2011,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":106,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Guelph; McMaster University","funders":"","keywords":"Ecohydrology; Peat; Biogeochemical cycle; Environmental science; Flexibility (engineering); Biogeochemistry; Landscape ecology; Water table; Ecology; Earth science; Hydrology (agriculture); Ecosystem; Geology; Groundwater; Habitat; Biology","score_opus":0.015462316972343116,"score_gpt":0.22694080826006477,"score_spread":0.21147849128772164,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2168026490","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.19514318,0.0053855376,0.65904176,0.028653836,0.00041214423,0.00015552848,0.0004207732,0.00022550381,0.11056163],"genre_scores_gemma":[0.9392412,0.0009638293,0.056565467,0.00043253443,0.00012339828,0.0001376833,0.00010667992,0.000023384508,0.002405817],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99924314,0.00047805882,0.000033600514,0.00008159698,0.00008635736,0.00007725403],"domain_scores_gemma":[0.99794656,0.0009913996,0.00029212967,0.0001318644,0.00024262229,0.00039541785],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0026240142,0.0005566072,0.0004307975,0.0020607412,0.0010243879,0.003675525,0.0016471541,0.0013705707,0.0037435316],"category_scores_gemma":[0.0027972362,0.00026629426,0.0009730731,0.0016494634,0.00812555,0.005893901,0.002774887,0.0017621104,0.0002846821],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000003857638,0.000009808152,0.00026609947,0.000021684142,0.000004962904,0.00005697765,0.00052719965,0.006022317,0.000046500518,0.99163765,0.00018266751,0.0012202748],"study_design_scores_gemma":[0.00000764846,0.000009947268,0.00030381203,0.000041761985,0.0000047680246,0.00003499152,0.00084567955,0.023974318,0.000034779492,0.9699691,0.004763155,0.000009947543],"about_ca_topic_score_codex":0.0060588312,"about_ca_topic_score_gemma":0.005499165,"teacher_disagreement_score":0.0060588312,"about_ca_system_score_codex":0.002974344,"about_ca_system_score_gemma":0.0019360523,"threshold_uncertainty_score":0.021580517},"labels":[],"label_agreement":null},{"id":"W2168757296","doi":"10.1002/eco.1308","title":"Coupling model uncertainty for coupled rainfall/runoff and surface water quality models in river problems","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"","keywords":"Calibration; Water balance; Watershed; Component (thermodynamics); Surface runoff; Hydrology (agriculture); Quality (philosophy); Water quality; Environmental science; Coupling (piping); Hydrological modelling; Computer science; Process (computing); Distributed element model; Surface water; Mathematics; Statistics; Machine learning; Geology; Environmental engineering","score_opus":0.03287585005211274,"score_gpt":0.26163697124495605,"score_spread":0.2287611211928433,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2168757296","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7794114,0.000247301,0.21467668,0.0006522381,0.000030781408,0.00015965142,0.00015863849,0.0001710154,0.004492338],"genre_scores_gemma":[0.9932421,0.00004834363,0.006191172,0.00003185564,0.0000073868614,0.000057286044,0.000047037312,0.00001716917,0.00035769586],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9977093,0.0015615118,0.00010595348,0.00020844114,0.00024089466,0.00017396174],"domain_scores_gemma":[0.9921625,0.006515732,0.0005555215,0.00020957696,0.00038522,0.00017139301],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0076961606,0.0008706448,0.00093912525,0.0010453156,0.0006147109,0.0016820327,0.0009568854,0.0013212463,0.0009052278],"category_scores_gemma":[0.018109057,0.00071242056,0.0010423557,0.00065381057,0.0012694376,0.0016758315,0.0031187688,0.0013771881,0.00006643762],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000021666689,0.000012618835,0.0007760835,0.0000058823557,0.000022001825,0.000014734661,0.000019892694,0.99662894,0.000101632904,0.0015614983,0.000022436907,0.00081254623],"study_design_scores_gemma":[0.0000071623426,0.000016410564,0.0002453863,0.000002425182,0.000007372025,0.0000020531495,0.000010239524,0.99761164,0.00008388289,0.0019771317,0.000031485106,0.0000047934054],"about_ca_topic_score_codex":0.020470496,"about_ca_topic_score_gemma":0.008403043,"teacher_disagreement_score":0.020470496,"about_ca_system_score_codex":0.0021299801,"about_ca_system_score_gemma":0.0013062237,"threshold_uncertainty_score":0.0407027},"labels":[],"label_agreement":null},{"id":"W2169649793","doi":"10.1002/eco.1323","title":"Pond hydrology and dissolved carbon dynamics at Polar Bear Pass wetland, Bathurst Island, Nunavut, Canada","year":2012,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Queen's University; York University","funders":"","keywords":"Wetland; Dissolved organic carbon; Permafrost; Hydrology (agriculture); Environmental science; Meltwater; STREAMS; Drainage basin; Groundwater; Snowmelt; Surface water; Surface runoff; Ecology; Glacier; Geology; Oceanography; Geography; Geomorphology","score_opus":0.009798655546326415,"score_gpt":0.19356840079330875,"score_spread":0.18376974524698234,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2169649793","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99778396,0.00008048828,0.000051986815,0.000045532986,0.0000024599365,0.000012778771,0.0008703634,0.0000075361245,0.0011450126],"genre_scores_gemma":[0.9982345,0.00007902167,0.00015703576,0.000015965732,0.0000012429731,0.000011092136,0.00048770677,0.0000034143109,0.0010100566],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99991393,0.000006412836,0.0000028559857,0.000022462524,0.000028512026,0.000025869722],"domain_scores_gemma":[0.99953425,0.000031672003,0.000062053245,0.000012746829,0.00022380697,0.00013547859],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013886396,0.00012055592,0.00014049136,0.0006011022,0.0013949794,0.0007003079,0.00048680237,0.0001404007,0.0016197792],"category_scores_gemma":[0.0004396141,0.00013370592,0.00013694765,0.0009262286,0.000585456,0.00023714479,0.00040917253,0.0002232473,0.00015583161],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000054862023,0.000029255167,0.9925604,0.000015562378,0.000027625769,0.0001588447,0.0007625683,0.00029645633,0.0016183025,0.000083126535,0.0006180262,0.0037750555],"study_design_scores_gemma":[0.000002213601,0.0000063185194,0.9980862,0.00000523518,0.0000041590047,0.000017874978,0.0009071333,0.00033727416,0.00012760979,0.000012214287,0.0004905532,0.0000032599667],"about_ca_topic_score_codex":0.97791404,"about_ca_topic_score_gemma":0.9929705,"teacher_disagreement_score":0.022085965,"about_ca_system_score_codex":0.009418958,"about_ca_system_score_gemma":0.0051708086,"threshold_uncertainty_score":0.068339705},"labels":[],"label_agreement":null},{"id":"W2171226737","doi":"10.1002/eco.1664","title":"Restoring functional riparian ecosystems: concepts and applications","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge","funders":"","keywords":"Riparian zone; Environmental science; Ecosystem; Environmental resource management; Ecology; Hydrology (agriculture); Computer science; Geology; Habitat; Biology; Geotechnical engineering","score_opus":0.022105463587332487,"score_gpt":0.24500958309747797,"score_spread":0.2229041195101455,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2171226737","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.027347196,0.1603252,0.63740784,0.009911288,0.0009420397,0.0003360872,0.0006841886,0.0010245247,0.16202167],"genre_scores_gemma":[0.5181274,0.13893437,0.3148523,0.0020288106,0.0017724498,0.00066608057,0.0006267407,0.0003019725,0.022689965],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9993561,0.00015195721,0.000055744033,0.00014139675,0.00023593483,0.00005892304],"domain_scores_gemma":[0.99867,0.00055987155,0.00019973042,0.00012922047,0.00030786992,0.00013334742],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001635342,0.0010393996,0.00061193114,0.0032877377,0.0011243396,0.0036473747,0.0019825555,0.0016595086,0.0045025153],"category_scores_gemma":[0.002960959,0.0003547893,0.00090960745,0.003637751,0.004275875,0.004639753,0.0024363708,0.0022361926,0.001168508],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000017569495,0.00006972874,0.0019167963,0.0009672198,0.000039105813,0.00037292758,0.0012259333,0.013500454,0.00085544446,0.73531675,0.008054833,0.23766337],"study_design_scores_gemma":[0.000010562074,0.000055675235,0.0017651343,0.0007282027,0.000030746698,0.001103037,0.0009908242,0.024973944,0.0005759366,0.8420665,0.12764187,0.000057563866],"about_ca_topic_score_codex":0.0033467268,"about_ca_topic_score_gemma":0.0029026305,"teacher_disagreement_score":0.0045025153,"about_ca_system_score_codex":0.0023943754,"about_ca_system_score_gemma":0.0014364811,"threshold_uncertainty_score":0.017372489},"labels":[],"label_agreement":null},{"id":"W2196528452","doi":"10.1002/eco.1699","title":"Hydrological controls on productivity of regenerating <i>Sphagnum</i> in a cutover peatland","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"Canadian Sphagnum Peat Moss Association; University of Waterloo","keywords":"Sphagnum; Peat; Environmental science; Productivity; Biomass (ecology); Water table; Water content; Hydrology (agriculture); Ecohydrology; Precipitation; Soil science; Agronomy; Ecology; Ecosystem; Groundwater; Geology; Biology; Geography","score_opus":0.018102879209712656,"score_gpt":0.23459851528641104,"score_spread":0.2164956360766984,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2196528452","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998585,0.0000055966557,0.000045360175,0.0000018163045,1.9028164e-7,0.0000014568067,0.000032742046,0.000003858786,0.000050474635],"genre_scores_gemma":[0.9998123,0.000005470778,0.00007826113,0.000001923312,4.6670655e-7,0.0000020857176,0.000060434522,0.0000014288428,0.000037551996],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999083,0.000017440878,0.000007456991,0.00002886835,0.000014388059,0.000023417262],"domain_scores_gemma":[0.9996636,0.000100079946,0.00007998672,0.000014247748,0.000039423987,0.00010271067],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032006262,0.00021423228,0.00026201166,0.00042676504,0.00023037444,0.00040911246,0.00023293478,0.0001639655,0.0004048069],"category_scores_gemma":[0.00028921766,0.00011239829,0.0002123894,0.00022701133,0.00033222654,0.00019341832,0.00026610465,0.0001657626,0.00006342686],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010172753,0.00024291538,0.45923838,0.0000848266,0.00014794656,0.00059637707,0.0004266979,0.005993277,0.52486724,0.00014291308,0.0000784425,0.0071636983],"study_design_scores_gemma":[0.0000066866355,0.00016658439,0.98892283,0.0000016058427,0.000014229943,0.000057059777,0.00016582673,0.0034420295,0.0070808255,0.000042138254,0.000092739836,0.000007394785],"about_ca_topic_score_codex":0.0099557545,"about_ca_topic_score_gemma":0.009253007,"teacher_disagreement_score":0.0099557545,"about_ca_system_score_codex":0.00071954465,"about_ca_system_score_gemma":0.000245315,"threshold_uncertainty_score":0.019795656},"labels":[],"label_agreement":null},{"id":"W2266052036","doi":"10.1002/eco.1708","title":"Moss and peat hydraulic properties are optimized to maximize peatland water use efficiency","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":30,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; University of Waterloo; University of Alberta","funders":"Syncrude","keywords":"Peat; Environmental science; Hydraulic conductivity; Hydrology (agriculture); Water storage; Soil science; Water balance; Ecology; Soil water; Geology; Geomorphology","score_opus":0.02543372124512035,"score_gpt":0.2114651324537486,"score_spread":0.18603141120862823,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2266052036","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9970251,0.000021273929,0.0024325906,0.0000104083965,0.0000010216385,0.000004266041,0.000030547373,0.000015159258,0.00045956773],"genre_scores_gemma":[0.999485,0.0000070124406,0.00043542378,0.0000020240366,1.7717642e-7,0.0000029120013,0.000011728362,0.0000022871036,0.000053553133],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.99994135,0.000010888072,0.0000034118937,0.0000128277425,0.0000068528766,0.000024659901],"domain_scores_gemma":[0.99977905,0.00009400109,0.000057145025,0.000015049585,0.000023631204,0.00003123016],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028042184,0.00016249824,0.00025148154,0.0001830633,0.00017280488,0.0004236462,0.00017433426,0.00022883719,0.00049981294],"category_scores_gemma":[0.0006543523,0.00013818027,0.00016328183,0.00014981069,0.0002260463,0.00033509542,0.0001908441,0.00014432288,0.00006595119],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018205533,0.00008815164,0.03234535,0.00006942434,0.000056342844,0.00014702011,0.000060551363,0.8754477,0.08371062,0.0012759247,0.00014428693,0.00647264],"study_design_scores_gemma":[0.00005646195,0.0004347746,0.06817554,0.000017623372,0.00006673286,0.00010618356,0.000229797,0.89003855,0.03814691,0.0021247247,0.0005643743,0.000038342],"about_ca_topic_score_codex":0.0029809165,"about_ca_topic_score_gemma":0.00564796,"teacher_disagreement_score":0.0029809165,"about_ca_system_score_codex":0.00047656996,"about_ca_system_score_gemma":0.0005140444,"threshold_uncertainty_score":0.0059271455},"labels":[],"label_agreement":null},{"id":"W2273251296","doi":"10.1002/eco.1714","title":"Identifying links between Fluvial Geomorphic Response Units (FGRUs) and fish species in the Assiniboine River, Manitoba","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Government of Canada; Fisheries and Oceans Canada; Global Institute for Water Security; University of Saskatchewan","funders":"Agriculture and Agri-Food Canada; University of Saskatchewan; Natural Resources Canada; Research Manitoba","keywords":"Electrofishing; Habitat; Fluvial; Resource (disambiguation); Range (aeronautics); Environmental science; Fauna; Geography; Species distribution; Hydrology (agriculture); River ecosystem; Ecology; Geology","score_opus":0.05802757722997409,"score_gpt":0.24839828903199515,"score_spread":0.19037071180202106,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2273251296","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9991097,0.000073482646,0.00014459943,0.000018473454,0.000001047534,0.00001369483,0.00020981707,0.0000039650195,0.00042525047],"genre_scores_gemma":[0.9988856,0.00006578359,0.00037965132,0.00001174095,8.2576196e-7,0.000016657044,0.00026283663,0.0000022517333,0.0003746674],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997528,0.00006288924,0.0000200506,0.00006173887,0.000037779075,0.000064765314],"domain_scores_gemma":[0.9988035,0.0003466675,0.0002788183,0.000070514514,0.00033557272,0.0001649829],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00065353926,0.0003269397,0.00018204711,0.0012695978,0.0008986647,0.00064556743,0.00041389395,0.00024249696,0.001044084],"category_scores_gemma":[0.0017432144,0.00023034087,0.00025043686,0.0015310614,0.00064108364,0.0002583774,0.0006885483,0.00020766536,0.00013199881],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00002665824,0.000013432539,0.99438655,0.000016550848,0.000035168076,0.00007618017,0.00079861615,0.00022130436,0.000840336,0.00003219534,0.00007754443,0.0034755042],"study_design_scores_gemma":[9.059313e-7,0.000010117626,0.9983854,0.0000072943144,0.0000080191485,0.000018761786,0.0011178309,0.00023407178,0.000053281343,0.000012817826,0.00014880039,0.0000027328597],"about_ca_topic_score_codex":0.7185596,"about_ca_topic_score_gemma":0.9085285,"teacher_disagreement_score":0.28144038,"about_ca_system_score_codex":0.0021470871,"about_ca_system_score_gemma":0.0025891478,"threshold_uncertainty_score":0.5661956},"labels":[],"label_agreement":null},{"id":"W2276168176","doi":"10.1002/eco.1722","title":"Critical issues with cryogenic extraction of soil water for stable isotope analysis","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Groundwater and Isotope Geochemistry","field":"Earth and Planetary Sciences","cited_by":197,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"","keywords":"Extraction (chemistry); Water extraction; Environmental science; Soil water; Isotope analysis; Ecohydrology; Environmental chemistry; Groundwater; Fraction (chemistry); Soil science; Chemistry; Ecosystem; Geology; Geotechnical engineering; Chromatography; Ecology","score_opus":0.017917151064953046,"score_gpt":0.25593355446572935,"score_spread":0.23801640340077632,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2276168176","genre_codex":"methods","genre_gemma":"methods","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"methods","genre_consensus":"methods","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.3365697,0.042822637,0.49858263,0.0864387,0.009888297,0.0026752576,0.0032382365,0.0012151109,0.01856941],"genre_scores_gemma":[0.65754706,0.022748614,0.2882718,0.01653469,0.0025006651,0.0029750504,0.0021105884,0.0010229569,0.0062885513],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9833293,0.0085289925,0.0012491604,0.0015379053,0.0047647036,0.00058998034],"domain_scores_gemma":[0.97012794,0.016114218,0.0017010116,0.004745444,0.006904323,0.00040707312],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.04107108,0.00082947186,0.0010619325,0.0010899117,0.0024141208,0.0029534146,0.0035584897,0.0023748418,0.002598192],"category_scores_gemma":[0.044769045,0.00057497603,0.0008000447,0.0012687921,0.006406759,0.00382887,0.002656894,0.0030766183,0.0016237329],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0014919866,0.00047754223,0.020554097,0.004980444,0.0004571698,0.0016506158,0.0050158235,0.007258721,0.75347155,0.04463432,0.0228567,0.13715108],"study_design_scores_gemma":[0.000084219864,0.0010411968,0.017619846,0.0015468858,0.00035697923,0.0020449322,0.0041987426,0.0075652185,0.7768976,0.04115869,0.14723717,0.00024844598],"about_ca_topic_score_codex":0.0045499913,"about_ca_topic_score_gemma":0.009266652,"teacher_disagreement_score":0.04107108,"about_ca_system_score_codex":0.0016064905,"about_ca_system_score_gemma":0.002217989,"threshold_uncertainty_score":0.2172072},"labels":[],"label_agreement":null},{"id":"W2289289852","doi":"10.1002/eco.1707","title":"Moving beyond bioclimatic envelope models: integrating upland forest and peatland processes to predict ecosystem transitions under climate change in the western Canadian boreal plain","year":2015,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":43,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta","funders":"Climate Change and Emissions Management Corporation","keywords":"Climate change; Peat; Boreal; Ecosystem; Environmental science; Taiga; Ecology; Boreal ecosystem; Ecosystem services; Grassland; Geography; Biology","score_opus":0.022998264351042953,"score_gpt":0.23207683282489877,"score_spread":0.2090785684738558,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2289289852","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.992833,0.0005436621,0.0032596407,0.00035628534,0.000021406007,0.000018254887,0.0006232576,0.00013649343,0.0022080748],"genre_scores_gemma":[0.99755377,0.00014594686,0.0015943545,0.000029301824,0.0000072330245,0.0000048201864,0.0003389824,0.000011657973,0.00031391886],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99988806,0.00002238925,0.000005314795,0.000025530828,0.000018163486,0.000040475785],"domain_scores_gemma":[0.99963975,0.00009441732,0.000042375545,0.000015269301,0.00009904084,0.000109061046],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006693077,0.0006295831,0.00035595996,0.0006764953,0.0010372136,0.0018428452,0.0007190247,0.0005238376,0.0008747677],"category_scores_gemma":[0.0011300091,0.0002481035,0.0005286119,0.0005104065,0.00049027964,0.0006379617,0.00058424636,0.0005379953,0.00012749035],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014572617,0.0001267496,0.28234217,0.00004901334,0.00026284973,0.00008726689,0.000114922026,0.69919395,0.0010464982,0.0011517389,0.001390011,0.014089132],"study_design_scores_gemma":[0.000016030435,0.000017936638,0.059190817,0.000013334921,0.0000425599,0.000010333439,0.00010358051,0.93919456,0.00015459687,0.0005871393,0.00065188814,0.000017103397],"about_ca_topic_score_codex":0.9101284,"about_ca_topic_score_gemma":0.91483474,"teacher_disagreement_score":0.089871585,"about_ca_system_score_codex":0.0049664187,"about_ca_system_score_gemma":0.005833146,"threshold_uncertainty_score":0.18080169},"labels":[],"label_agreement":null},{"id":"W2301405993","doi":"10.1002/eco.1735","title":"Fish feeding niche characterization over space and time in a natural boreal river","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Fisheries and Oceans Canada; University of Waterloo","funders":"","keywords":"Niche; Environmental science; Boreal; Ecology; Fish <Actinopterygii>; Ecological niche; Hydrology (agriculture); Fishery; Biology; Habitat; Geology","score_opus":0.003075971232473903,"score_gpt":0.18242099520898078,"score_spread":0.17934502397650687,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2301405993","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99947006,0.000033773904,0.000052723037,0.00000500827,5.976257e-7,0.0000021435358,0.00028722745,0.0000021971093,0.00014628579],"genre_scores_gemma":[0.9990858,0.000027939555,0.00015799487,0.000005337664,0.0000011024404,0.000007750325,0.00058627716,0.0000022742472,0.00012547808],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999775,0.000037974685,0.00001859407,0.00008498697,0.000036996604,0.000046555342],"domain_scores_gemma":[0.999456,0.000067285095,0.00023607862,0.00004771455,0.00010778718,0.00008514365],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00039582603,0.00014470513,0.00025889007,0.00083566416,0.00058635505,0.0004715491,0.00028489035,0.00016984681,0.00053301465],"category_scores_gemma":[0.0008235019,0.00016770726,0.00028868267,0.0009280917,0.0004405439,0.0002870516,0.0004061342,0.00012354563,0.0000852902],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00008566913,0.000015973043,0.99332666,0.000018279088,0.000063314714,0.00006118434,0.0008083566,0.00013561713,0.0028179311,0.000019601568,0.00010845086,0.0025389767],"study_design_scores_gemma":[5.367451e-7,0.0000058843566,0.99965274,0.0000011534769,0.000003827994,0.000017136388,0.00015629153,0.00006132611,0.000026258322,0.0000029849234,0.00006999742,0.0000018129476],"about_ca_topic_score_codex":0.27558243,"about_ca_topic_score_gemma":0.5722689,"teacher_disagreement_score":0.27558243,"about_ca_system_score_codex":0.0010252744,"about_ca_system_score_gemma":0.00061351137,"threshold_uncertainty_score":0.5479567},"labels":[],"label_agreement":null},{"id":"W2320112749","doi":"10.1002/eco.1736","title":"River–groundwater interactions in salmon spawning habitat: riverbed flow dynamics and non‐stationarity in an end member mixing model","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"University of British Columbia","keywords":"Upwelling; Oncorhynchus; Hyporheic zone; Hydrology (agriculture); Groundwater; Environmental science; Habitat; Spawn (biology); STREAMS; Chinook wind; Discharge; Streamflow; Oceanography; Geology; Fishery; Ecology; Geography; Fish <Actinopterygii>; Drainage basin","score_opus":0.011681507414064115,"score_gpt":0.2405500624077635,"score_spread":0.22886855499369937,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2320112749","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8303516,0.00017661566,0.163337,0.0007836111,0.000044880002,0.000075604206,0.0003293205,0.00018846183,0.0047130445],"genre_scores_gemma":[0.99097437,0.000063472806,0.005331514,0.00006881351,0.000026412055,0.00006411673,0.00015811682,0.000039385537,0.0032737346],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99950147,0.00024947542,0.00002382488,0.00009405954,0.000037720223,0.00009341162],"domain_scores_gemma":[0.9979804,0.0011073019,0.0003642017,0.00007345898,0.00023763602,0.00023704775],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0022607688,0.00072944595,0.0009965374,0.00075998803,0.0009862111,0.0014889507,0.0023270627,0.0015817794,0.0014469905],"category_scores_gemma":[0.003358493,0.0009040449,0.001157493,0.0005863464,0.0010628479,0.0014277692,0.0015202883,0.0011621857,0.00023429551],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000041414605,0.0000464786,0.005358523,0.0000072027533,0.00003927613,0.00004439877,0.000034006447,0.9913687,0.00024579462,0.0017155494,0.00012658918,0.00097214227],"study_design_scores_gemma":[0.0000027631884,0.0000049600217,0.00018959069,6.154979e-7,0.0000026865955,0.000001213908,0.000004162001,0.99956185,0.000009577749,0.00020227568,0.000018271357,0.0000020783973],"about_ca_topic_score_codex":0.057807352,"about_ca_topic_score_gemma":0.02271327,"teacher_disagreement_score":0.057807352,"about_ca_system_score_codex":0.0017333893,"about_ca_system_score_gemma":0.0016358598,"threshold_uncertainty_score":0.114941776},"labels":[],"label_agreement":null},{"id":"W2466154958","doi":"10.1002/eco.1750","title":"Hydroclimatic influences on peatland CO<sub>2</sub> exchange following upland forest harvesting on the Boreal Plains","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; McMaster University; University of Waterloo","funders":"","keywords":"Peat; Environmental science; Boreal; Evapotranspiration; Deforestation (computer science); Growing season; Logging; Microclimate; Hydrology (agriculture); Water content; Ecosystem; Forestry; Ecology; Geography; Geology; Biology","score_opus":0.012753917750507134,"score_gpt":0.22487325373544778,"score_spread":0.21211933598494065,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2466154958","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99974865,0.000020907877,0.000015264368,0.0000033993824,5.0792255e-7,0.000001563569,0.0000708352,0.000002049356,0.00013688223],"genre_scores_gemma":[0.9996917,0.000014324256,0.00002322501,0.000004497194,7.2769967e-7,0.0000016181085,0.0001407279,8.612547e-7,0.00012225835],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999941,0.00000876679,0.0000028405443,0.000011254259,0.00001289697,0.00002320443],"domain_scores_gemma":[0.99971956,0.000033724846,0.00008900995,0.000013968386,0.000053775915,0.000089999674],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019135758,0.00012734928,0.00014459506,0.00025472528,0.00029490143,0.0003865735,0.00016273269,0.00011119526,0.0006142161],"category_scores_gemma":[0.00026625744,0.00007747506,0.00011713114,0.00023170564,0.00027397025,0.00014865778,0.00017368469,0.000111654466,0.000078782265],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00057261565,0.00013947573,0.95733577,0.000023702836,0.00007827268,0.00024321403,0.00038087624,0.0005436808,0.03545807,0.000038050992,0.00018522557,0.005001036],"study_design_scores_gemma":[4.271203e-7,0.000008534858,0.99976224,3.0528756e-7,0.0000012797618,0.000006564893,0.000048941252,0.00004828152,0.000093567876,0.0000018614404,0.000027430993,6.452111e-7],"about_ca_topic_score_codex":0.18069303,"about_ca_topic_score_gemma":0.4209099,"teacher_disagreement_score":0.18069303,"about_ca_system_score_codex":0.00095420884,"about_ca_system_score_gemma":0.0004531425,"threshold_uncertainty_score":0.35928255},"labels":[],"label_agreement":null},{"id":"W2470518204","doi":"10.1002/eco.1766","title":"Water level regulation affects niche use of a lake top predator, Arctic charr (<i>Salvelinus alpinus</i>)","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Pelagic zone; Salvelinus; Littoral zone; Ecology; Niche; Abiotic component; Biology; Ecological niche; Habitat; Arctic; Abundance (ecology); Gasterosteus; Environmental science; Fishery; Trout; Fish <Actinopterygii>","score_opus":0.0189464118242889,"score_gpt":0.20987310103639406,"score_spread":0.19092668921210515,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2470518204","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99992275,0.0000048828556,0.000011482578,0.0000016508449,1.8161415e-7,3.711177e-7,0.000009117949,9.580708e-7,0.0000484767],"genre_scores_gemma":[0.99988127,0.000004304035,0.00002862102,0.00000296009,3.556604e-7,9.620347e-7,0.00002465849,6.0746794e-7,0.000056220786],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999443,0.0000118631915,0.0000037173907,0.000014434825,0.000009765415,0.000015920143],"domain_scores_gemma":[0.9997806,0.000026168454,0.000091023576,0.000009011952,0.000025204074,0.00006797757],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012628899,0.00011087687,0.000118709155,0.00024079939,0.0002844241,0.00031059183,0.0000888085,0.00010464362,0.00069669157],"category_scores_gemma":[0.00020152038,0.00009051098,0.000116193136,0.00010371537,0.00021500394,0.000119268305,0.00023630496,0.00011863041,0.00006690231],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006408177,0.00011481582,0.75199324,0.000034746794,0.00007995846,0.00025480925,0.0008130433,0.00034298043,0.24165937,0.000045768506,0.00010956597,0.0039109127],"study_design_scores_gemma":[0.0000024943781,0.00013629266,0.99810326,0.0000011832008,0.000007938004,0.000054505643,0.00022667821,0.00029656952,0.0010899212,0.000006654112,0.00007234156,0.0000021012106],"about_ca_topic_score_codex":0.0068993964,"about_ca_topic_score_gemma":0.014154523,"teacher_disagreement_score":0.0068993964,"about_ca_system_score_codex":0.0002517334,"about_ca_system_score_gemma":0.00012267822,"threshold_uncertainty_score":0.013718426},"labels":[],"label_agreement":null},{"id":"W2472502490","doi":"10.1002/eco.1758","title":"Differences in movements of northern pike inhabiting rivers with contrasting flow regimes","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Carleton University; Université de Montréal; Cégep Marie-Victorin","funders":"","keywords":"Pike; Esox; Hydrology (agriculture); Environmental science; Habitat; Streamflow; Fishery; STREAMS; Fish <Actinopterygii>; Geography; Ecology; Drainage basin; Geology; Biology","score_opus":0.0061991200428436,"score_gpt":0.17744176448056864,"score_spread":0.17124264443772505,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2472502490","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99977547,0.000022522494,0.000034920202,0.0000022147435,4.2142815e-7,0.0000015539482,0.000025659168,0.0000022183626,0.00013503192],"genre_scores_gemma":[0.9995554,0.00002181093,0.000079620986,0.0000074231593,9.2368566e-7,0.000004753042,0.00010589483,0.0000013325996,0.00022282948],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997925,0.00004397176,0.000017375476,0.00006783054,0.0000385733,0.000039668383],"domain_scores_gemma":[0.99966586,0.00006500856,0.00013341052,0.000019068093,0.000041596904,0.00007497217],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000273113,0.00010381887,0.00028026762,0.00042987632,0.0002372244,0.00051808316,0.00014175859,0.00022791483,0.00061712303],"category_scores_gemma":[0.00054202863,0.00016715776,0.00019705138,0.00025526548,0.0003878991,0.00024066443,0.0003063558,0.00014222896,0.00009400075],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00048344032,0.00009071062,0.879669,0.000052891563,0.00014983234,0.00018030981,0.000950306,0.00032771335,0.111521006,0.000046552523,0.00008164131,0.0064465296],"study_design_scores_gemma":[7.754834e-7,0.000038610284,0.99964654,5.357629e-7,0.000003014959,0.000012407249,0.000078231365,0.000035855683,0.0001515262,0.0000023330858,0.000029116207,0.0000011852597],"about_ca_topic_score_codex":0.018497549,"about_ca_topic_score_gemma":0.03743286,"teacher_disagreement_score":0.018497549,"about_ca_system_score_codex":0.00044133267,"about_ca_system_score_gemma":0.00018394866,"threshold_uncertainty_score":0.03677976},"labels":[],"label_agreement":null},{"id":"W2483365359","doi":"10.1002/eco.1731","title":"Ecohydrological feedbacks in peatlands: an empirical test of the relationship among vegetation, microtopography and water table","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":79,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"","keywords":"Bog; Peat; Ombrotrophic; Vegetation (pathology); Environmental science; Water table; Hydrology (agriculture); Spatial ecology; Context (archaeology); Sphagnum; Ecology; Physical geography; Geology; Groundwater; Geography","score_opus":0.010872920614314073,"score_gpt":0.2304535355392982,"score_spread":0.21958061492498412,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2483365359","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99975854,0.000009429208,0.00011624063,0.000004679126,4.462961e-7,0.0000012751908,0.000015527301,0.0000022790086,0.00009155218],"genre_scores_gemma":[0.9999356,0.0000016551761,0.00003267274,0.0000015473838,5.737345e-7,0.0000011259034,0.00001330317,5.066493e-7,0.000012846118],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9993781,0.0003133072,0.00003877236,0.00011006731,0.00008936052,0.000070475326],"domain_scores_gemma":[0.99195147,0.0056699566,0.0010245345,0.00041029433,0.00052314624,0.00042067343],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0013687668,0.0001368714,0.00030257044,0.0006311929,0.00021682771,0.00032844333,0.00038293604,0.00025279724,0.0011447137],"category_scores_gemma":[0.0059421733,0.00014623621,0.0001996263,0.00033197165,0.00063830114,0.0004841208,0.00064166955,0.00028498462,0.00010855736],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001815121,0.00008812697,0.9910492,0.000013372783,0.000059568025,0.00006936984,0.00027803562,0.0006814008,0.0055769137,0.00007318445,0.000028938537,0.0019003822],"study_design_scores_gemma":[0.0000036439608,0.00006510306,0.99565756,0.0000019014697,0.000008030078,0.000044631353,0.000294708,0.0035585815,0.00025952634,0.000062543586,0.000041054733,0.0000026598964],"about_ca_topic_score_codex":0.005156413,"about_ca_topic_score_gemma":0.0064838417,"teacher_disagreement_score":0.005156413,"about_ca_system_score_codex":0.00029491438,"about_ca_system_score_gemma":0.00017136766,"threshold_uncertainty_score":0.010252833},"labels":[],"label_agreement":null},{"id":"W2508754706","doi":"10.1002/eco.1780","title":"Short‐term selective thinning effects on hydraulic functionality of a temperate pine forest in eastern Canada","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University","funders":"","keywords":"Thinning; Environmental science; Evapotranspiration; Eddy covariance; Temperate forest; Ecosystem; Forest ecology; Forest management; Temperate rainforest; Agroforestry; Hydrology (agriculture); Forestry; Ecology; Geography; Geology; Biology","score_opus":0.005085596497014272,"score_gpt":0.18903008021899245,"score_spread":0.1839444837219782,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2508754706","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99950147,0.000039747327,0.000021757236,0.000008448164,5.5223126e-7,0.0000023622222,0.00010562265,0.000002452942,0.00031749607],"genre_scores_gemma":[0.99950683,0.00003869398,0.00006160436,0.0000074233926,5.719837e-7,0.0000019824533,0.00012498994,0.00000121515,0.00025668167],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99984276,0.000007854229,0.000004711241,0.00003045639,0.00004263973,0.000071485374],"domain_scores_gemma":[0.9996247,0.000024374971,0.000059648082,0.0000131175475,0.00015832784,0.00011970764],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022007737,0.00020790272,0.00025105462,0.00047244894,0.0013570582,0.0005138333,0.00040126315,0.00014287829,0.0005789191],"category_scores_gemma":[0.00032438204,0.0001142281,0.00015023383,0.00060866965,0.00046633327,0.00017968896,0.0002655033,0.00019380286,0.00006232448],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00048237783,0.0001393224,0.93292284,0.000044210257,0.00009088223,0.00050404633,0.0012223106,0.00219236,0.04822631,0.00014950162,0.0005037715,0.013522083],"study_design_scores_gemma":[0.0000016529928,0.000012575395,0.9990119,0.0000015028209,0.0000053508825,0.000018411902,0.0002580278,0.00025442577,0.0002459429,0.000008224345,0.00017906589,0.0000027857022],"about_ca_topic_score_codex":0.9379411,"about_ca_topic_score_gemma":0.98737466,"teacher_disagreement_score":0.062058926,"about_ca_system_score_codex":0.00818448,"about_ca_system_score_gemma":0.00587797,"threshold_uncertainty_score":0.12484878},"labels":[],"label_agreement":null},{"id":"W2531896008","doi":"10.1002/eco.1798","title":"Responses of riparian plants to habitat changes following restoration of channelized streams","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Svenska Forskningsrådet Formas","keywords":"Channelized; Riparian zone; STREAMS; Environmental science; Stream restoration; Habitat; Vegetation (pathology); Bank; Species richness; Hydrology (agriculture); Substrate (aquarium); Restoration ecology; Ecology; Geology; Geomorphology; Biology","score_opus":0.01370645890031416,"score_gpt":0.24218075831789393,"score_spread":0.22847429941757977,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2531896008","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99987423,0.000019000105,0.000018547351,0.0000016130108,5.172029e-7,0.0000021125222,0.000020163492,0.0000015701434,0.0000622756],"genre_scores_gemma":[0.99977475,0.000014045553,0.00004241341,0.0000054837874,0.0000010876353,0.0000028288594,0.00006584679,7.5067624e-7,0.00009282416],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999739,0.000060740826,0.000017969856,0.000055655626,0.000044797256,0.00008183812],"domain_scores_gemma":[0.9990716,0.00013967822,0.00031640127,0.00004751179,0.00013433721,0.00029042835],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000345728,0.00017754915,0.00026000864,0.00036921704,0.00023049244,0.00045820128,0.00021225095,0.00019024237,0.0010159619],"category_scores_gemma":[0.0009110595,0.000110990164,0.00020830292,0.0002167124,0.00037807215,0.00021054954,0.0004363737,0.00023284974,0.000063747626],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0035616735,0.0005244631,0.8640914,0.0001500607,0.00026068548,0.0006669654,0.0009724718,0.003879286,0.113099515,0.000078510304,0.00015178497,0.012563044],"study_design_scores_gemma":[0.0000038800667,0.00024994492,0.99846727,0.0000020107188,0.000009544896,0.000032010645,0.00017275986,0.00031505577,0.0006721523,0.000010206288,0.000062584506,0.0000025638485],"about_ca_topic_score_codex":0.0039427336,"about_ca_topic_score_gemma":0.009868494,"teacher_disagreement_score":0.0039427336,"about_ca_system_score_codex":0.00041892764,"about_ca_system_score_gemma":0.0002956238,"threshold_uncertainty_score":0.0078395605},"labels":[],"label_agreement":null},{"id":"W2539480111","doi":"10.1002/eco.1801","title":"The absorption and evaporation of water vapor by epiphytes in an old‐growth Douglas‐fir forest during the seasonal summer dry season: Implications for the canopy energy budget","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Lichen and fungal ecology","field":"Agricultural and Biological Sciences","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Thompson Rivers University","funders":"Oregon State University","keywords":"Epiphyte; Canopy; Vapour Pressure Deficit; Environmental science; Lichen; Latent heat; Atmospheric sciences; Botany; Horticulture; Hydrology (agriculture); Ecology; Biology; Photosynthesis; Transpiration; Geography; Physics; Geology; Meteorology","score_opus":0.009271362792927552,"score_gpt":0.21075800173372145,"score_spread":0.20148663894079388,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2539480111","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997228,0.000038501003,0.00012632327,0.0000027662647,4.0248128e-7,0.0000013522363,0.00003471363,0.000002971292,0.00007025004],"genre_scores_gemma":[0.9996227,0.000029973977,0.00016973223,0.0000042851984,8.295076e-7,0.0000023434284,0.00008119614,0.0000014414825,0.000087509005],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999362,0.000010074917,0.000004141304,0.000021577687,0.000013202032,0.000014683655],"domain_scores_gemma":[0.9998677,0.000041709227,0.000025013069,0.0000087907865,0.0000234817,0.00003332124],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025765834,0.000308989,0.0002920467,0.00025865666,0.00033444498,0.00034074413,0.00023555363,0.00021176033,0.0003219297],"category_scores_gemma":[0.00014560037,0.00018657483,0.0002351515,0.000149519,0.00017309266,0.0003178159,0.00014145559,0.00018778184,0.00007538402],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005029099,0.0002276384,0.6240872,0.00006395501,0.00009821658,0.00018427309,0.00018524009,0.0046080337,0.36387792,0.00005315808,0.000076384145,0.006034979],"study_design_scores_gemma":[0.0000044439194,0.0000927916,0.9898107,0.0000017108965,0.0000117544305,0.000050257448,0.00008125173,0.004109319,0.0057704034,0.000009663778,0.000053500306,0.000004247817],"about_ca_topic_score_codex":0.021164235,"about_ca_topic_score_gemma":0.029805847,"teacher_disagreement_score":0.021164235,"about_ca_system_score_codex":0.0005968212,"about_ca_system_score_gemma":0.0002405729,"threshold_uncertainty_score":0.04208207},"labels":[],"label_agreement":null},{"id":"W2548533100","doi":"10.1002/eco.1804","title":"Peatland bryophyte responses to increased light from black spruce removal","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University; University of Waterloo; University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; Natural Environment Research Council; Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada; Syncrude; Canadian Natural Resources Limited","keywords":"Sphagnum; Bryophyte; Environmental science; Ecohydrology; Biogeochemical cycle; Canopy; Peat; Moss; Black spruce; Tree canopy; Ecology; Hydrology (agriculture); Ecosystem; Biology; Taiga; Geology","score_opus":0.007227848095607344,"score_gpt":0.21534386598453226,"score_spread":0.20811601788892492,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2548533100","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99956924,0.00007357466,0.000060065984,0.000008826934,0.000004733679,0.0000036464169,0.000082209364,0.0000070578376,0.00019067987],"genre_scores_gemma":[0.9985997,0.000048685866,0.000109162866,0.000044278622,0.0000053608283,0.000017621152,0.00036593343,0.000006919574,0.0008023586],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999106,0.0000123314,0.0000057987795,0.000020848696,0.000016643635,0.00003374001],"domain_scores_gemma":[0.99964297,0.000067621346,0.000087247696,0.00002385854,0.000043174226,0.00013514477],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014649902,0.0002609526,0.0004305185,0.00014970616,0.0002335323,0.00041244624,0.00020381,0.00032719635,0.0014270521],"category_scores_gemma":[0.000218653,0.0001416551,0.00021492154,0.00009192979,0.00023265711,0.00018511522,0.0003065495,0.0007922533,0.00016319683],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0026694713,0.00024843408,0.010437209,0.000055154127,0.000039992035,0.00007803322,0.000066485256,0.000218764,0.9837794,0.000016090875,0.0000535247,0.0023374537],"study_design_scores_gemma":[0.00005863469,0.0037271834,0.8805512,0.000011001793,0.00004850498,0.00009872243,0.00026681507,0.00082846236,0.11341488,0.0000631856,0.0009115963,0.000019830914],"about_ca_topic_score_codex":0.004097946,"about_ca_topic_score_gemma":0.0063588144,"teacher_disagreement_score":0.004097946,"about_ca_system_score_codex":0.00047621844,"about_ca_system_score_gemma":0.00027397778,"threshold_uncertainty_score":0.008148193},"labels":[],"label_agreement":null},{"id":"W2553213197","doi":"10.1002/eco.1812","title":"Carnation Creek watershed experiment—long‐term responses of coho salmon populations to historic forest practices","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Ministry of Environment","funders":"Simon Fraser University","keywords":"Riparian zone; Watershed; Fish migration; Clearcutting; Environmental science; Oncorhynchus; Riparian forest; Population; Tributary; Geography; Fishery; Hydrology (agriculture); Habitat; Ecology; Forestry; Biology; Geology; Fish <Actinopterygii>","score_opus":0.033070925701858996,"score_gpt":0.2923486189001025,"score_spread":0.2592776931982435,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2553213197","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998115,0.00000888749,0.0000096005,0.000007099957,0.000002021946,0.000006325869,0.00009110525,0.0000012034221,0.0000623216],"genre_scores_gemma":[0.998741,0.000010476025,0.00006352671,0.000034977682,0.000003671001,0.00004709028,0.00061360374,0.0000021201008,0.00048362665],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99950075,0.00016934871,0.000024731471,0.00012058956,0.000087028624,0.00009754983],"domain_scores_gemma":[0.9987575,0.00014208014,0.00029982856,0.000110645495,0.00016370193,0.00052625965],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008218161,0.00021360326,0.0002469928,0.00025508276,0.000645049,0.0003850042,0.00033037752,0.00040224378,0.00087919645],"category_scores_gemma":[0.0008171316,0.00021631047,0.00022349905,0.00026410486,0.0004174787,0.00032219038,0.00033670667,0.0006147127,0.00013545257],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.009074296,0.010504857,0.9398918,0.00002800233,0.00037279408,0.00029801775,0.0007811257,0.0006519364,0.031222377,0.00009340406,0.0013096429,0.0057715992],"study_design_scores_gemma":[0.00008734238,0.0033460718,0.99447423,0.0000030724348,0.000027000902,0.000027200815,0.00029970464,0.00035105244,0.0010622402,0.000016937229,0.00029590464,0.00000922605],"about_ca_topic_score_codex":0.030102434,"about_ca_topic_score_gemma":0.07536102,"teacher_disagreement_score":0.030102434,"about_ca_system_score_codex":0.0010584168,"about_ca_system_score_gemma":0.0005958189,"threshold_uncertainty_score":0.059854448},"labels":[],"label_agreement":null},{"id":"W2554796743","doi":"10.1002/eco.1807","title":"Associations of event‐scale flow hydrology with fish richness in urbanizing Canadian watersheds of Lake Ontario","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Ottawa; Coast Mountain College","funders":"Environment Canada","keywords":"Species richness; Environmental science; Urbanization; Hydrology (agriculture); Surface runoff; Geography; Streamflow; Range (aeronautics); Ecology; Drainage basin; Geology; Biology; Cartography","score_opus":0.006239287659944357,"score_gpt":0.18001988530223628,"score_spread":0.17378059764229192,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2554796743","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9988279,0.000050435738,0.00005443676,0.000050153656,0.0000010482559,0.0000057354423,0.0005190267,0.0000036428958,0.00048761143],"genre_scores_gemma":[0.99931383,0.00004213228,0.000049002225,0.0000070940614,8.611985e-7,0.0000037691696,0.00024904328,0.0000012114098,0.00033305434],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99972075,0.0000270992,0.000015068497,0.000069683076,0.000062277206,0.00010508954],"domain_scores_gemma":[0.9988814,0.00015089374,0.00028382678,0.00005121197,0.0003917224,0.00024087653],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002650594,0.00017933533,0.00021182276,0.0009063429,0.0013921533,0.0009858477,0.00054905436,0.00021807378,0.0017882346],"category_scores_gemma":[0.0012791137,0.0001882153,0.00025749035,0.0018169258,0.000810319,0.0003350261,0.00063249335,0.00023600661,0.00008305127],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000033225344,0.000010802751,0.9959221,0.000012864137,0.000027008511,0.000035501816,0.0010323847,0.0002482529,0.0003865949,0.00009253967,0.0002804147,0.0019181771],"study_design_scores_gemma":[9.283395e-7,0.0000032244373,0.99877006,0.0000039343154,0.000004474882,0.000006836264,0.000767991,0.00020434099,0.000027167236,0.000010153397,0.00019848802,0.0000024174044],"about_ca_topic_score_codex":0.9880455,"about_ca_topic_score_gemma":0.9961462,"teacher_disagreement_score":0.013240952,"about_ca_system_score_codex":0.013240952,"about_ca_system_score_gemma":0.007751003,"threshold_uncertainty_score":0.09607023},"labels":[],"label_agreement":null},{"id":"W2555017791","doi":"10.1002/eco.1810","title":"Increased complementarity in water‐limited environments in Scots pine and European beech mixtures under climate change","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":55,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Universidad Pública de Navarra","keywords":"Beech; Environmental science; Interception; Scots pine; Fagus sylvatica; Climate change; Canopy; Ecology; Ecosystem; Biology; Botany; Pinus <genus>","score_opus":0.012989170051625379,"score_gpt":0.20666763092905863,"score_spread":0.19367846087743323,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2555017791","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997497,0.000018634359,0.00009843052,0.0000035508917,5.146843e-7,8.890438e-7,0.000025796275,0.0000036074018,0.000098919576],"genre_scores_gemma":[0.99989057,0.0000040929476,0.00005075313,0.00000239866,3.0346538e-7,8.6939764e-7,0.000027265653,9.017238e-7,0.000022739587],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99983466,0.000048596703,0.000009195173,0.000046931604,0.000019450985,0.000041175812],"domain_scores_gemma":[0.99966145,0.00012476821,0.00007472651,0.000020609432,0.0000374908,0.00008095225],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000356362,0.00034242644,0.000270199,0.00049283117,0.0003760357,0.00066949753,0.00026325716,0.00023233278,0.00069952285],"category_scores_gemma":[0.00051686954,0.0001458897,0.0002826688,0.0002717693,0.00025442673,0.00036116596,0.0005241238,0.00012805678,0.00005022781],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0010273735,0.00018993282,0.8769346,0.000055745382,0.0003673204,0.00055418303,0.00022493495,0.06151515,0.051387172,0.00049892865,0.000194129,0.0070505603],"study_design_scores_gemma":[0.000014865158,0.00010305975,0.9470835,0.0000053161602,0.000047960475,0.00008777568,0.0003022276,0.050435584,0.0014959712,0.00021066556,0.00019959875,0.000013465691],"about_ca_topic_score_codex":0.022528281,"about_ca_topic_score_gemma":0.043697797,"teacher_disagreement_score":0.022528281,"about_ca_system_score_codex":0.0006764354,"about_ca_system_score_gemma":0.00023961512,"threshold_uncertainty_score":0.04479432},"labels":[],"label_agreement":null},{"id":"W2561808237","doi":"10.1002/eco.1824","title":"The ecohydrological vulnerability of a large inland delta to changing regional streamflows and upstream irrigation expansion","year":2016,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":26,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Global Institute for Water Security; Concordia University; University of Saskatchewan","funders":"Canada Research Chairs","keywords":"Streamflow; Environmental science; Hydrology (agriculture); Climate change; Ecosystem; Irrigation; Wetland; Ecology; Drainage basin; Geography; Geology","score_opus":0.011057182840112154,"score_gpt":0.24041748040743038,"score_spread":0.22936029756731824,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2561808237","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99906546,0.000008600492,0.00036324657,0.000019968616,0.000003013169,0.0000057098105,0.00020661665,0.000014292419,0.0003131136],"genre_scores_gemma":[0.99942315,0.000014706608,0.00026903732,0.000009122732,0.0000010226806,0.000005629912,0.00016185302,0.0000024209237,0.00011288822],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.99988985,0.000029045326,0.0000089992045,0.000029103496,0.00001208496,0.000030964206],"domain_scores_gemma":[0.99971205,0.00010912439,0.000034670513,0.000043231517,0.00006600487,0.000034847795],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003039081,0.00038588422,0.00036768435,0.00041634962,0.00042593348,0.0007721187,0.00046504012,0.0005114517,0.00086883083],"category_scores_gemma":[0.00066109264,0.00028542624,0.0004995841,0.00047333312,0.00036748758,0.0003784331,0.00047577746,0.00039728294,0.00006674433],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009403199,0.00012353508,0.16341394,0.000027162223,0.0002055172,0.00031485254,0.00006511095,0.82433975,0.0063552004,0.00034751036,0.00037142858,0.004342091],"study_design_scores_gemma":[0.000029246046,0.000086909655,0.11472434,0.000007691097,0.00007267213,0.00004807142,0.00018629718,0.8825801,0.0015547279,0.00039356342,0.00029046234,0.000025910684],"about_ca_topic_score_codex":0.100998856,"about_ca_topic_score_gemma":0.099812485,"teacher_disagreement_score":0.100998856,"about_ca_system_score_codex":0.0014107011,"about_ca_system_score_gemma":0.001091174,"threshold_uncertainty_score":0.20082194},"labels":[],"label_agreement":null},{"id":"W2581632758","doi":"10.1002/eco.1836","title":"Streamflow response to clear‐cut logging on British Columbia's Okanagan Plateau","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":53,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Ministry of Forests","funders":"","keywords":"Streamflow; Snowmelt; Watershed; Environmental science; Plateau (mathematics); Hydrology (agriculture); Water year; Irrigation; Logging; Growing season; Snow; Drainage basin; Geography; Ecology; Forestry; Geology; Biology; Meteorology","score_opus":0.008801277782236763,"score_gpt":0.22684250050500424,"score_spread":0.21804122272276746,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2581632758","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9989993,0.000026390308,0.000015400832,0.00001821552,0.0000015361908,0.0000063754887,0.00036495237,0.0000041079525,0.00056362204],"genre_scores_gemma":[0.99737895,0.000061160485,0.00006309363,0.000034634988,0.0000011994242,0.000015941128,0.0014536527,0.0000036924225,0.0009876236],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997111,0.000039982122,0.000016407002,0.000059593985,0.00009014752,0.00008270311],"domain_scores_gemma":[0.99887484,0.00018910241,0.00014671798,0.00008197374,0.0004178857,0.0002895819],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027041935,0.0001686817,0.00025433674,0.00042267708,0.00069632987,0.00067405944,0.0003469743,0.00026743003,0.0009542375],"category_scores_gemma":[0.0011496537,0.00014506571,0.0001301514,0.000635388,0.00045566587,0.00016168927,0.0004105138,0.00034574218,0.00014473964],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011117178,0.0004100007,0.96572953,0.000038292477,0.00016688852,0.00030864286,0.0006775155,0.001732455,0.014453953,0.000055774664,0.0015657683,0.013749358],"study_design_scores_gemma":[0.0000039470633,0.000022116994,0.9991903,0.0000024634974,0.0000067607257,0.000007635341,0.0001552134,0.00025386037,0.0001884137,0.0000037206783,0.00016281514,0.0000027238489],"about_ca_topic_score_codex":0.8009695,"about_ca_topic_score_gemma":0.9473323,"teacher_disagreement_score":0.19903052,"about_ca_system_score_codex":0.0033730043,"about_ca_system_score_gemma":0.002723213,"threshold_uncertainty_score":0.4004053},"labels":[],"label_agreement":null},{"id":"W2582151635","doi":"10.1002/eco.1840","title":"Do the hydrological responses to forest disturbances in large watersheds vary along climatic gradients in the interior of British Columbia, Canada?","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of British Columbia, Okanagan Campus; University of British Columbia","funders":"National Natural Science Foundation of China","keywords":"Environmental science; Hydrology (agriculture); Watershed; Climate change; Precipitation; Willow; Evapotranspiration; Water balance; Forest management; Ecology; Geology; Geography; Agroforestry","score_opus":0.011199218255066756,"score_gpt":0.22973515843997896,"score_spread":0.2185359401849122,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2582151635","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9982699,0.00009709523,0.00005323536,0.00008695081,0.000002037929,0.000008419235,0.0006751656,0.0000058539663,0.00080124347],"genre_scores_gemma":[0.99917465,0.00008374913,0.00006630848,0.000030067107,0.0000012585082,0.000005799653,0.00039837023,0.0000018394655,0.00023780629],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99969566,0.000026627076,0.00001449102,0.00007329345,0.00006227142,0.00012753867],"domain_scores_gemma":[0.99906725,0.00009172039,0.00014702654,0.000033056487,0.0003909641,0.00027006524],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002381708,0.00016490891,0.0002791971,0.00076551584,0.0013104778,0.0010223185,0.00051514414,0.00024456205,0.0010475817],"category_scores_gemma":[0.0009704849,0.00014709601,0.00017408111,0.00241602,0.000809007,0.00021377316,0.00050011487,0.0003044388,0.000102784856],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00004828406,0.000024145425,0.9930783,0.000014147024,0.000030313147,0.000097161406,0.00057113374,0.0002685098,0.0012001357,0.00004552279,0.00049068726,0.0041316245],"study_design_scores_gemma":[0.0000010271347,0.0000017318664,0.99902666,0.000002855915,0.000003700689,0.0000093499075,0.00063511916,0.00013540786,0.000027851656,0.00000733544,0.00014671426,0.0000022281336],"about_ca_topic_score_codex":0.9857919,"about_ca_topic_score_gemma":0.9955289,"teacher_disagreement_score":0.014208078,"about_ca_system_score_codex":0.008719652,"about_ca_system_score_gemma":0.0069387592,"threshold_uncertainty_score":0.0632658},"labels":[],"label_agreement":null},{"id":"W2582635544","doi":"10.1002/eco.1838","title":"Forest cover change and water yield in large forested watersheds: A global synthetic assessment","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":103,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Okanagan University College; University of British Columbia, Okanagan Campus; University of British Columbia","funders":"National Natural Science Foundation of China","keywords":"Reforestation; Environmental science; Watershed; Deforestation (computer science); Climate change; Context (archaeology); Land cover; Hydrology (agriculture); Forest cover; Yield (engineering); Agroforestry; Land use; Ecology; Geography; Geology","score_opus":0.023115608402810916,"score_gpt":0.2597929694803853,"score_spread":0.23667736107757442,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2582635544","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.995368,0.00010434459,0.0026292587,0.00008055385,0.000003938096,0.000019959785,0.00093065156,0.000024296049,0.0008389751],"genre_scores_gemma":[0.997656,0.00005657047,0.0011347327,0.000013268438,0.000004603853,0.000023310564,0.00102918,0.000004615133,0.000077705],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.9996232,0.00021371341,0.000019531046,0.0000672828,0.000047719346,0.00002856265],"domain_scores_gemma":[0.99906045,0.00048555183,0.0001720766,0.00011629225,0.00010360682,0.00006196176],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012434426,0.00045146036,0.0002481579,0.001019042,0.00021260396,0.00060853537,0.00028641356,0.0004562894,0.00082480663],"category_scores_gemma":[0.0019549066,0.00013956419,0.0008237173,0.0014932225,0.0005919518,0.0008756825,0.00083360437,0.00027980332,0.000064505904],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00056878343,0.00029083795,0.39841753,0.00016675699,0.00066408224,0.0007570616,0.0002443792,0.56924284,0.004381576,0.004066282,0.00095198076,0.020247908],"study_design_scores_gemma":[0.00007663806,0.0005686972,0.40995485,0.000028772289,0.00021026492,0.00031823266,0.0005444599,0.5774159,0.0020097832,0.006236477,0.0025707628,0.00006510958],"about_ca_topic_score_codex":0.0040185275,"about_ca_topic_score_gemma":0.0030870757,"teacher_disagreement_score":0.0040185275,"about_ca_system_score_codex":0.0006270482,"about_ca_system_score_gemma":0.0002053064,"threshold_uncertainty_score":0.007990241},"labels":[],"label_agreement":null},{"id":"W2587083163","doi":"10.1002/eco.1843","title":"The two water worlds hypothesis: Addressing multiple working hypotheses and proposing a way forward","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":154,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Vetenskapsrådet; Comisión Nacional de Investigación Científica y Tecnológica; Svenska Forskningsrådet Formas; National Science Foundation","keywords":"Hydrosphere; Groundwater; Scope (computer science); Soil water; Environmental science; Wetland; Streamflow; Hydrology (agriculture); Earth science; Ecology; Soil science; Computer science; Geology; Geography; Biology; Biosphere","score_opus":0.0258579443807437,"score_gpt":0.23294524678994485,"score_spread":0.20708730240920115,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2587083163","genre_codex":"commentary","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.12483473,0.013158983,0.36561257,0.46039465,0.0074069137,0.00057480513,0.00057879655,0.0005647269,0.026873793],"genre_scores_gemma":[0.8419264,0.0052037635,0.12133276,0.021957133,0.0057933046,0.0009794618,0.00045107698,0.000096669,0.002259402],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.98943615,0.0052635097,0.00057277514,0.0032590819,0.0009363607,0.0005320919],"domain_scores_gemma":[0.9111094,0.06329328,0.010462389,0.005935008,0.005244507,0.00395548],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.042393975,0.0024882783,0.004149793,0.0036564593,0.003217348,0.008681873,0.011107265,0.010943313,0.015173164],"category_scores_gemma":[0.059356283,0.0011785828,0.0028349778,0.0025578095,0.028620424,0.032949578,0.010719754,0.008801407,0.0016586027],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038433043,0.00027900503,0.009853221,0.001266376,0.00066225184,0.0011147711,0.0020806727,0.0031167811,0.00087861385,0.925987,0.0061174002,0.04825953],"study_design_scores_gemma":[0.000078721154,0.00007246816,0.00111998,0.00017988375,0.000062328276,0.00015162892,0.0022416261,0.009544442,0.00032980434,0.982624,0.0035203916,0.000074698284],"about_ca_topic_score_codex":0.0011381779,"about_ca_topic_score_gemma":0.0008509256,"teacher_disagreement_score":0.042393975,"about_ca_system_score_codex":0.0025728557,"about_ca_system_score_gemma":0.0038863092,"threshold_uncertainty_score":0.22420341},"labels":[],"label_agreement":null},{"id":"W2599185536","doi":"10.1002/eco.1862","title":"Source water contributions and hydrologic responses to simulated emerald ash borer infestations in depressional black ash wetlands","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fire effects on ecosystems","field":"Environmental Science","cited_by":29,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Thompson Rivers University","funders":"Michigan Technological University; U.S. Department of Agriculture","keywords":"Emerald ash borer; Wetland; Environmental science; Fraxinus; Hydrology (agriculture); Interflow; Ecology; Groundwater; Water table; Black spruce; Geology; Surface runoff; Biology","score_opus":0.007228901568660662,"score_gpt":0.2610274564126352,"score_spread":0.2537985548439745,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2599185536","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99984264,0.0000013296764,0.000031582076,0.0000022217237,3.3102998e-7,0.0000018206043,0.000054110253,0.0000042313127,0.00006164328],"genre_scores_gemma":[0.99980944,0.0000022381203,0.00005464909,0.0000019202532,3.0896646e-7,0.0000042046395,0.000078501675,6.9191316e-7,0.000047981117],"study_design_codex":"observational","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9999565,0.000011622545,0.0000029070914,0.000010291801,0.000007464985,0.000011189813],"domain_scores_gemma":[0.99985707,0.000042616597,0.0000351184,0.0000066304137,0.000017886996,0.000040607145],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009052953,0.00013198043,0.000112912414,0.00016168572,0.00013799858,0.00021844213,0.00014161268,0.00014294071,0.0005817938],"category_scores_gemma":[0.00026291676,0.00008181105,0.00013455658,0.00010655529,0.00010792424,0.00010367334,0.00017143354,0.00012924266,0.00004314473],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0016311291,0.00050631806,0.86786073,0.00003648778,0.00013820683,0.00029528452,0.0002781172,0.027985925,0.09491177,0.00010285479,0.0003108076,0.0059423875],"study_design_scores_gemma":[0.000030690022,0.00046514452,0.9532172,0.0000021379724,0.00002887403,0.00003688296,0.00019033467,0.04150354,0.0043371744,0.000044510653,0.00013615245,0.0000072690545],"about_ca_topic_score_codex":0.0092275655,"about_ca_topic_score_gemma":0.01844598,"teacher_disagreement_score":0.0092275655,"about_ca_system_score_codex":0.00038573617,"about_ca_system_score_gemma":0.00011484814,"threshold_uncertainty_score":0.01834774},"labels":[],"label_agreement":null},{"id":"W2617368957","doi":"10.1002/eco.1874","title":"Effect of a semi‐permanent road on N, P, and CO<sub>2</sub> dynamics in a poor fen on the Western Boreal Plain, Canada","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Petrel Robertson Consulting (Canada); University of Waterloo","funders":"Alberta Innovates","keywords":"Peat; Environmental science; Boreal; Mire; Primary production; Hydrology (agriculture); Ecosystem; Nutrient; Ecosystem respiration; Eddy covariance; Growing season; Ecohydrology; Nutrient cycle; Cycling; Biogeochemistry; Ecology; Water table; Groundwater; Geography; Forestry; Geology; Biology","score_opus":0.0039550251448384295,"score_gpt":0.2111292358630158,"score_spread":0.20717421071817738,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2617368957","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996364,0.000009529998,0.000027434553,0.000006873338,5.322081e-7,0.0000032871847,0.00008131845,0.0000029028038,0.0002316417],"genre_scores_gemma":[0.9994956,0.000012986969,0.00012807024,0.0000061290953,3.389186e-7,0.0000031255431,0.000093768984,0.0000010454144,0.00025892665],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998216,0.000014044444,0.000005678019,0.000035472836,0.000048144695,0.00007505747],"domain_scores_gemma":[0.999635,0.000029970943,0.000046710604,0.000013496485,0.00014435762,0.00013056597],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016531542,0.00015494824,0.00022810092,0.00046502994,0.0018702263,0.0006635269,0.00045418603,0.00020019051,0.0006688457],"category_scores_gemma":[0.00028422786,0.00012144632,0.00016768616,0.00051082927,0.0007331857,0.00015467397,0.0004070796,0.00018132401,0.00006495522],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006031308,0.00018982153,0.9621423,0.0000377102,0.00006002116,0.0009436712,0.0012023291,0.0026313788,0.021711905,0.0001571516,0.00053893693,0.009781533],"study_design_scores_gemma":[0.0000035677185,0.00004942988,0.9960223,0.00000396565,0.000008644644,0.000049527367,0.0014057279,0.001465141,0.0005646717,0.00001898005,0.00040215882,0.000005868916],"about_ca_topic_score_codex":0.93518513,"about_ca_topic_score_gemma":0.9800843,"teacher_disagreement_score":0.064814866,"about_ca_system_score_codex":0.0061550946,"about_ca_system_score_gemma":0.0045739706,"threshold_uncertainty_score":0.13039309},"labels":[],"label_agreement":null},{"id":"W2623592481","doi":"10.1002/eco.1879","title":"Litter is more effective than forest canopy reducing soil evaporation in Dry Chaco rangelands","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":60,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"International Development Research Centre; Agencia Nacional de Promoción Científica y Tecnológica; Secretaría de Ciencia y Técnica, Universidad de Buenos Aires; Universidad de Buenos Aires; Inter-American Institute for Global Change Research; National Science Foundation","keywords":"Lysimeter; Environmental science; Litter; Canopy; Plant litter; Transpiration; Tree canopy; Hydrology (agriculture); Soil water; Agronomy; Ecosystem; Soil science; Ecology; Geology; Botany; Biology","score_opus":0.00503716138969603,"score_gpt":0.2217928000550551,"score_spread":0.21675563866535907,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2623592481","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995142,0.000105855834,0.00005563266,0.0000061913415,0.0000010624469,0.0000030841327,0.000052596144,0.000005130933,0.00025630617],"genre_scores_gemma":[0.99954385,0.00007300776,0.00014612745,0.00001245072,0.0000023718915,0.0000063300527,0.00010813376,0.0000024449628,0.00010518402],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988174,0.000025363845,0.000010031054,0.00004280396,0.000014195205,0.00002590597],"domain_scores_gemma":[0.99967384,0.000071788774,0.00011930709,0.000023149169,0.000037621492,0.00007424071],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019491142,0.0002278314,0.00032686212,0.0003690958,0.0002137153,0.0004106737,0.00022796764,0.00014946354,0.00081352313],"category_scores_gemma":[0.00044753362,0.00013705138,0.00013630278,0.00021191647,0.00024731187,0.0001897147,0.00027905818,0.000109135806,0.00008061102],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007546947,0.00017935282,0.79813546,0.00026624967,0.00014075039,0.00025137913,0.00027291264,0.0006939357,0.18442732,0.000074732874,0.00014496675,0.014658249],"study_design_scores_gemma":[0.000005810597,0.000099516685,0.9981335,0.0000058585606,0.00001415002,0.00004663279,0.00008279875,0.00032386894,0.0010826729,0.0000128210095,0.0001908008,0.0000015651601],"about_ca_topic_score_codex":0.009849131,"about_ca_topic_score_gemma":0.033483814,"teacher_disagreement_score":0.009849131,"about_ca_system_score_codex":0.0003255879,"about_ca_system_score_gemma":0.00020964668,"threshold_uncertainty_score":0.019583583},"labels":[],"label_agreement":null},{"id":"W2735502680","doi":"10.1002/eco.1893","title":"Mineral nitrogen and phosphorus pools affected by water table lowering and warming in a boreal forested peatland","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":58,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo; Northern Alberta Institute of Technology; University of Calgary","funders":"Alberta Innovates - Technology Futures; University of Calgary","keywords":"Peat; Ombrotrophic; Environmental science; Bog; Nitrogen; Nutrient; Sphagnum; Water table; Phosphorus; Boreal; Hydrology (agriculture); Environmental chemistry; Chemistry; Ecology; Geology; Groundwater","score_opus":0.005273367643628407,"score_gpt":0.21034888303590843,"score_spread":0.20507551539228003,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2735502680","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99986196,0.000010800051,0.000023796749,0.0000015761611,6.4038454e-7,0.0000014715907,0.00004081603,0.000001849903,0.00005714769],"genre_scores_gemma":[0.9997644,0.0000073570177,0.00006946005,0.0000038469293,8.686217e-7,0.000003859148,0.000073915595,8.6257165e-7,0.00007542853],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999461,0.0000063386124,0.0000043435953,0.000020448279,0.000007379494,0.000015431373],"domain_scores_gemma":[0.99987054,0.000012894659,0.00003734903,0.0000075860994,0.00002460633,0.00004713181],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013427551,0.00020488535,0.00025069393,0.0003192608,0.00034969285,0.00030736864,0.00020149616,0.00020817705,0.0003667105],"category_scores_gemma":[0.00010588144,0.00013416648,0.00022264042,0.00016297042,0.0003525594,0.00023263869,0.00022741623,0.00016760176,0.0000536497],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0012297506,0.0002729802,0.54086465,0.00005461931,0.00008699935,0.00037980374,0.0005820234,0.00090900244,0.4505914,0.000062417916,0.00007599589,0.004890418],"study_design_scores_gemma":[0.0000025126283,0.00008567364,0.9969825,9.812981e-7,0.0000065624668,0.00003557641,0.00012884573,0.0003876232,0.0022796225,0.000010565776,0.000076193246,0.0000033713293],"about_ca_topic_score_codex":0.016627276,"about_ca_topic_score_gemma":0.028472599,"teacher_disagreement_score":0.016627276,"about_ca_system_score_codex":0.00043832566,"about_ca_system_score_gemma":0.00024024742,"threshold_uncertainty_score":0.033061028},"labels":[],"label_agreement":null},{"id":"W2736590871","doi":"10.1002/eco.1891","title":"Riparian and geomorphic controls on thermal habitat dynamics of pools in a temperate headwater stream","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Division of Environmental Biology; Fonds de recherche du Québec – Nature et technologies","keywords":"Riparian zone; Habitat; Environmental science; STREAMS; Temperate climate; Hydrology (agriculture); Ecology; Vegetation (pathology); Stream bed; Geology; Biology","score_opus":0.007424968874920285,"score_gpt":0.2163518913277325,"score_spread":0.20892692245281222,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2736590871","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998472,0.000010936058,0.000026369793,0.0000016843229,1.3875365e-7,0.0000010996607,0.000016865628,7.4841523e-7,0.00009502514],"genre_scores_gemma":[0.9998357,0.000009561916,0.000035888334,0.0000022305526,6.8101883e-7,0.0000019365614,0.000029721507,7.668483e-7,0.0000834701],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99992347,0.000025134363,0.0000057979914,0.000017369832,0.0000081980525,0.000019907964],"domain_scores_gemma":[0.9997342,0.000040284995,0.00009899354,0.000010931674,0.000025560417,0.00008997285],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016891364,0.00009118436,0.00015739769,0.0004507824,0.00028693094,0.0003762616,0.00013625534,0.000104920895,0.0013390203],"category_scores_gemma":[0.00034164923,0.00012318649,0.00011373975,0.00027075756,0.00028090752,0.00019097862,0.00037679877,0.00006133781,0.00012457826],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00036828427,0.00016811267,0.95893216,0.000036766192,0.00009421736,0.00043158422,0.00072090095,0.0010043432,0.03142481,0.00015623434,0.00012887188,0.006533822],"study_design_scores_gemma":[0.0000019047216,0.000044950684,0.99913484,0.0000015251758,0.000006158722,0.000029066356,0.00015337701,0.00043413058,0.000121239704,0.00002381521,0.00004708963,0.0000019440936],"about_ca_topic_score_codex":0.0037299034,"about_ca_topic_score_gemma":0.01234858,"teacher_disagreement_score":0.0037299034,"about_ca_system_score_codex":0.0001750986,"about_ca_system_score_gemma":0.00022317174,"threshold_uncertainty_score":0.007416427},"labels":[],"label_agreement":null},{"id":"W2741116332","doi":"10.1002/eco.1898","title":"Fine‐scale distribution of moisture in the surface of a degraded blanket bog and its effects on the potential spread of smouldering fire","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Natural Resources Canada; Canadian Forest Service","funders":"European Regional Development Fund; Higher Education Authority","keywords":"Sphagnum; Peat; Bog; Moss; Environmental science; Moisture; Water content; Hydrology (agriculture); Vegetation (pathology); Atmospheric sciences; Soil science; Geology; Ecology; Geography; Biology; Meteorology","score_opus":0.007186970660401741,"score_gpt":0.2176217319038578,"score_spread":0.21043476124345606,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2741116332","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99980265,0.000014260988,0.00006632858,0.0000017952166,4.989279e-7,8.477027e-7,0.000032781678,0.0000041730605,0.0000766122],"genre_scores_gemma":[0.9999069,0.000004585629,0.000037493784,9.3839503e-7,4.9254527e-7,5.7544844e-7,0.000024722556,9.842928e-7,0.000023387456],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999393,0.000010714688,0.0000041051917,0.00001750826,0.000010585385,0.000017761688],"domain_scores_gemma":[0.999577,0.00015184273,0.00009917772,0.000023266703,0.0000430276,0.00010577105],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014896556,0.00018052082,0.00024724822,0.00038941728,0.00016810672,0.0003686476,0.00013116968,0.00020194046,0.0006565709],"category_scores_gemma":[0.00046641016,0.000103045706,0.0002535049,0.00018194057,0.00021256527,0.00013866072,0.00024090802,0.00013307747,0.00008501031],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00065548514,0.00016883916,0.85873204,0.0000622479,0.00016523516,0.000404304,0.00019289396,0.008999017,0.12339442,0.00004919483,0.00005665045,0.007119691],"study_design_scores_gemma":[0.0000011552075,0.000030432575,0.99574983,0.0000011810966,0.000006575427,0.00003201258,0.000050061124,0.0035354057,0.0005604496,0.000008964943,0.000021767544,0.0000021231579],"about_ca_topic_score_codex":0.009923095,"about_ca_topic_score_gemma":0.011539473,"teacher_disagreement_score":0.009923095,"about_ca_system_score_codex":0.00025348968,"about_ca_system_score_gemma":0.00009838467,"threshold_uncertainty_score":0.019730687},"labels":[],"label_agreement":null},{"id":"W2765309267","doi":"10.1002/eco.1922","title":"Ecohydrological responses to rewetting of a highly impacted raised bog ecosystem","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of British Columbia","funders":"","keywords":"Environmental science; Transect; Bog; Peat; Water table; Normalized Difference Vegetation Index; Hydrology (agriculture); Vegetation (pathology); Ecosystem; Growing season; Sphagnum; Evapotranspiration; Eddy covariance; Physical geography; Ecology; Climate change; Groundwater; Geology; Geography","score_opus":0.014941765982736494,"score_gpt":0.26470992345376887,"score_spread":0.24976815747103237,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2765309267","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99979824,0.00001081442,0.000037218895,0.0000019672655,3.9725964e-7,0.0000028056184,0.0000334861,0.0000032777114,0.00011185723],"genre_scores_gemma":[0.999572,0.000014862041,0.000120530676,0.0000048095435,4.4951952e-7,0.000003550687,0.00008592262,0.0000014365074,0.00019636998],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999238,0.0000073264437,0.0000031267332,0.000014218808,0.000020712883,0.000030757503],"domain_scores_gemma":[0.9997613,0.000019441137,0.00005915902,0.000013109109,0.00006984698,0.00007715806],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011434274,0.00014957802,0.00015613131,0.00025108145,0.00034482608,0.0003286739,0.00019013429,0.00014313534,0.00035683488],"category_scores_gemma":[0.00022375127,0.000076743505,0.00012582874,0.00019349874,0.00022737656,0.000104385,0.00021778289,0.00016420001,0.000051390973],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00061860937,0.00018733977,0.66592115,0.00007981631,0.000098324614,0.00052357017,0.0011815074,0.0033315856,0.31578615,0.00004541698,0.00018423915,0.012042299],"study_design_scores_gemma":[6.6883916e-7,0.000043029515,0.9976737,0.0000012473178,0.0000040216787,0.000022340177,0.00027314507,0.0004689987,0.0013846346,0.000003929393,0.00012207104,0.0000021632313],"about_ca_topic_score_codex":0.19323769,"about_ca_topic_score_gemma":0.46659684,"teacher_disagreement_score":0.19323769,"about_ca_system_score_codex":0.0011254792,"about_ca_system_score_gemma":0.00069941685,"threshold_uncertainty_score":0.38422585},"labels":[],"label_agreement":null},{"id":"W2765329541","doi":"10.1002/eco.1923","title":"Beaver‐mediated water table dynamics in a Rocky Mountain fen","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Ecology and biodiversity studies","field":"Environmental Science","cited_by":42,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"Natural Sciences and Engineering Research Council of Canada; Global Institute for Water Security, University of Saskatchewan; University of Calgary","keywords":"Beaver; Peat; Water table; Environmental science; Hydrology (agriculture); Wetland; Groundwater; Ecology; Geology","score_opus":0.006650461817595461,"score_gpt":0.19818475716652353,"score_spread":0.19153429534892807,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2765329541","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99982256,0.000011101533,0.000045717356,0.0000034267878,3.983893e-7,8.055901e-7,0.000016571077,0.0000018581721,0.00009759603],"genre_scores_gemma":[0.999785,0.000008990857,0.000076332115,0.0000026540247,4.1296892e-7,0.0000018606842,0.000022134862,5.146161e-7,0.000102165475],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993646,0.000015930997,0.0000031050151,0.00001545296,0.000010896464,0.000018148125],"domain_scores_gemma":[0.9996911,0.00004967156,0.0001143867,0.000016153806,0.00005706109,0.0000715716],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018899719,0.00009723142,0.00016430307,0.00026467507,0.0003408434,0.00027702627,0.00018197353,0.00013972865,0.0006743409],"category_scores_gemma":[0.00038479373,0.000067060966,0.00009785098,0.00016890993,0.00024475192,0.0001962747,0.00026569853,0.00013565486,0.000045883422],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005854919,0.00023755823,0.8212339,0.000050587027,0.000087447064,0.0010037656,0.002396726,0.002096867,0.15675704,0.00020357738,0.00024184592,0.015105166],"study_design_scores_gemma":[0.0000023173304,0.0001608688,0.9947364,0.000003650609,0.00001102131,0.00009065852,0.00052995834,0.0010120491,0.0029643986,0.000054433487,0.00042709996,0.000007197246],"about_ca_topic_score_codex":0.011438342,"about_ca_topic_score_gemma":0.023831578,"teacher_disagreement_score":0.011438342,"about_ca_system_score_codex":0.00033416165,"about_ca_system_score_gemma":0.00023421485,"threshold_uncertainty_score":0.022743523},"labels":[],"label_agreement":null},{"id":"W2766345374","doi":"10.1002/eco.1921","title":"Watershed services in the humid tropics: Opportunities from recent advances in ecohydrology","year":2017,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":50,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; University of Calgary","funders":"Fundação de Amparo à Pesquisa do Estado de São Paulo; National Science Foundation","keywords":"Ecohydrology; Watershed; Tropics; Watershed management; Ecosystem services; Environmental resource management; Business; Resource management (computing); Water resources; Baseline (sea); Environmental planning; Psychological intervention; Environmental science; Land management; Land use; Computer science; Ecosystem; Ecology; Political science","score_opus":0.023896668260075075,"score_gpt":0.2519712759645706,"score_spread":0.2280746077044955,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2766345374","genre_codex":"review","genre_gemma":"review","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"review","genre_consensus":"review","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.13654444,0.71028036,0.011440118,0.10586143,0.00047967033,0.00006785884,0.0005451145,0.000063886124,0.03471718],"genre_scores_gemma":[0.5169019,0.47019568,0.0085940845,0.0018484266,0.0015349826,0.000028008933,0.00013749165,0.000014999753,0.0007443354],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.99932575,0.00035021713,0.00003842575,0.000060066184,0.00015057008,0.00007488307],"domain_scores_gemma":[0.9938777,0.0037003052,0.0008462021,0.00015360877,0.0009433785,0.00047888042],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0046034805,0.00035847406,0.00038848975,0.0021454124,0.0003769346,0.0021458063,0.000504272,0.00055999885,0.0024486526],"category_scores_gemma":[0.0040132273,0.00014007482,0.00025867933,0.0045865388,0.00301154,0.0033182637,0.0015664913,0.0010453156,0.00010816894],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00023068098,0.00015549715,0.049291007,0.009421815,0.00018192988,0.0008686502,0.0057525425,0.01061171,0.004309546,0.12893717,0.009297614,0.78094184],"study_design_scores_gemma":[0.00006121212,0.00072289776,0.2328466,0.00828185,0.00024561863,0.0010009367,0.022227718,0.014985406,0.004163804,0.11813916,0.59714603,0.00017885468],"about_ca_topic_score_codex":0.018499544,"about_ca_topic_score_gemma":0.02878858,"teacher_disagreement_score":0.018499544,"about_ca_system_score_codex":0.0032504206,"about_ca_system_score_gemma":0.0045594214,"threshold_uncertainty_score":0.036783755},"labels":[],"label_agreement":null},{"id":"W2789253664","doi":"10.1002/eco.1955","title":"Potential influence of nutrient availability along a hillslope: Peatland gradient on aspen recovery following fire","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; McMaster University; University of Waterloo","funders":"","keywords":"Peat; Nutrient; Environmental science; Wetland; Plant litter; Mire; Boreal; Nutrient cycle; Ecology; Hydrology (agriculture); Agronomy; Biology; Geology","score_opus":0.005053721039340826,"score_gpt":0.2112548278531294,"score_spread":0.2062011068137886,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2789253664","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99980706,0.0000145517715,0.000015734036,0.0000032049365,4.961288e-7,0.0000013121723,0.000044856828,9.1613657e-7,0.0001118596],"genre_scores_gemma":[0.9998056,0.00001255459,0.000030132498,0.0000032304504,5.873608e-7,0.0000012609456,0.000064359025,5.0246285e-7,0.00008180409],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999082,0.00001706346,0.00000746118,0.000016709597,0.000020744366,0.000029788078],"domain_scores_gemma":[0.9995351,0.00009172125,0.00012689573,0.000011993565,0.00007720728,0.00015710559],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020490077,0.00011311233,0.00014629688,0.00045742645,0.00029073542,0.0004798284,0.00016061487,0.00014457921,0.0006603984],"category_scores_gemma":[0.0004903519,0.00006864894,0.000101706806,0.00034001403,0.00022781578,0.00013168776,0.0002173143,0.00014104358,0.00008367419],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003438797,0.000060936487,0.9872519,0.000009729116,0.000029993833,0.0002029468,0.00016117356,0.00016328071,0.009397124,0.00001670394,0.000040233335,0.0023222065],"study_design_scores_gemma":[5.5159416e-7,0.000018545841,0.9996221,6.740597e-7,0.0000018547157,0.000020023675,0.00012334505,0.00007788405,0.00010723702,0.0000032165508,0.000023809858,7.2422625e-7],"about_ca_topic_score_codex":0.045717124,"about_ca_topic_score_gemma":0.12686534,"teacher_disagreement_score":0.045717124,"about_ca_system_score_codex":0.0003838185,"about_ca_system_score_gemma":0.00027278587,"threshold_uncertainty_score":0.09090203},"labels":[],"label_agreement":null},{"id":"W2789781573","doi":"10.1002/eco.1941","title":"Ecohydrological functioning of an upland undergoing reclamation on post‐mining landscape of the Athabasca oil sands region, Canada","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Environmental science; Land reclamation; Peat; Vegetation (pathology); Edaphic; Boreal; Taiga; Ecology; Soil water; Revegetation; Hydrology (agriculture); Soil science; Geology","score_opus":0.007975320561180598,"score_gpt":0.19622295555116026,"score_spread":0.18824763498997965,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2789781573","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994856,0.000018901776,0.000012772687,0.000012466876,4.203901e-7,0.0000033053946,0.00021277624,0.0000018021697,0.0002518759],"genre_scores_gemma":[0.9994505,0.000021301148,0.00004045344,0.0000051250017,4.2168028e-7,0.000002180884,0.00022440714,7.2676335e-7,0.00025489068],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99987364,0.000008761311,0.0000040434516,0.00001948953,0.000025321633,0.000068762056],"domain_scores_gemma":[0.99964666,0.000020995292,0.00005308738,0.0000120084105,0.00014164143,0.00012557894],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010627006,0.00015222421,0.00014865864,0.0007218623,0.0011051839,0.00064448884,0.00052708364,0.00017432695,0.0006851279],"category_scores_gemma":[0.00029943045,0.00008919602,0.00016515519,0.00092346343,0.000439231,0.00013504631,0.00036362768,0.00018602025,0.00008694895],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014873389,0.000088741195,0.98131496,0.000029124863,0.00003657908,0.00055776304,0.0026283355,0.0005215196,0.007255268,0.00012395911,0.00038860863,0.0069063613],"study_design_scores_gemma":[8.4158125e-7,0.00001051599,0.99828726,0.0000022189804,0.0000027242384,0.000019713307,0.0011813014,0.0001939311,0.00009275608,0.000004353553,0.00020223133,0.0000022201193],"about_ca_topic_score_codex":0.9606584,"about_ca_topic_score_gemma":0.98786014,"teacher_disagreement_score":0.03934163,"about_ca_system_score_codex":0.008158429,"about_ca_system_score_gemma":0.0050746943,"threshold_uncertainty_score":0.079146564},"labels":[],"label_agreement":null},{"id":"W2789797850","doi":"10.1002/eco.1959","title":"Effect of discharge and habitat type on the occurrence and severity of <scp><i>Didymosphenia geminata</i></scp> mats in the Restigouche River, eastern Canada","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Institut National de la Recherche Scientifique","funders":"","keywords":"Environmental science; Diatom; Watershed; Habitat; Ecosystem; Hydrology (agriculture); Ecology; Fishery; Biology; Geology","score_opus":0.005428060273456368,"score_gpt":0.2063890930389352,"score_spread":0.20096103276547883,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2789797850","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99824524,0.000056711247,0.00006641126,0.000027789876,0.000002159547,0.000004966368,0.0011782562,0.000007847994,0.00041071797],"genre_scores_gemma":[0.9983884,0.000053754888,0.000094917355,0.000009748332,0.0000010813852,0.000003911547,0.0011036537,0.0000031830511,0.00034134634],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999752,0.000019312656,0.000016285456,0.00005988722,0.00007407112,0.000078401405],"domain_scores_gemma":[0.9992563,0.00009099883,0.00011891587,0.000030453044,0.0003026331,0.00020069341],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022120369,0.00019429559,0.00021091745,0.0006156678,0.0007219745,0.00096663914,0.00046639083,0.00018090352,0.00079363224],"category_scores_gemma":[0.0010250757,0.000106828265,0.0002697879,0.0015606203,0.00044585016,0.00022114761,0.00053933205,0.00026848796,0.000088701345],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00002814038,0.000008117595,0.9966192,0.00000931184,0.00003492275,0.000058553855,0.00024814045,0.00019886288,0.00060651434,0.000021986718,0.00020425282,0.001961958],"study_design_scores_gemma":[5.5817645e-7,0.000003643609,0.99906343,0.0000030759727,0.0000054381276,0.000012564848,0.00045306998,0.0002287378,0.00004124604,0.0000041615563,0.00018185472,0.0000022597935],"about_ca_topic_score_codex":0.9277931,"about_ca_topic_score_gemma":0.97356385,"teacher_disagreement_score":0.072206914,"about_ca_system_score_codex":0.0037453512,"about_ca_system_score_gemma":0.0037505324,"threshold_uncertainty_score":0.14526427},"labels":[],"label_agreement":null},{"id":"W2789928346","doi":"10.1002/eco.1976","title":"Quantifying peat hydrodynamic properties and their influence on water table depths in peatlands of southern Quebec (Canada)","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":15,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Université du Québec à Montréal","funders":"Fonds de recherche du Québec – Nature et technologies; Nature Conservancy of Canada; Fonds Québécois de la Recherche sur la Nature et les Technologies","keywords":"Peat; Water table; Table (database); Environmental science; Soil science; Humus; Bulk density; Hydrology (agriculture); Hydraulic conductivity; Geology; Ecology; Soil water; Groundwater","score_opus":0.011448588983475947,"score_gpt":0.19220494689254977,"score_spread":0.18075635790907382,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2789928346","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9976459,0.0001421226,0.00023039029,0.000037951533,0.0000019563322,0.000014292052,0.00089174765,0.000016434653,0.0010192842],"genre_scores_gemma":[0.9987469,0.00005545503,0.0002609279,0.000013595168,7.9536477e-7,0.000007807614,0.00040017933,0.0000031803274,0.0005111259],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998104,0.000021027068,0.00000778314,0.00004850274,0.00005220425,0.00006016046],"domain_scores_gemma":[0.9990938,0.00014491241,0.00013004814,0.000023643017,0.00043408538,0.00017354997],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032822328,0.00025948163,0.00022315749,0.0009555043,0.0011582876,0.0009601955,0.0005274231,0.00023737417,0.0014551391],"category_scores_gemma":[0.00087452686,0.00013731129,0.00018672236,0.0013817515,0.00064928964,0.00024862424,0.00033024338,0.00017954338,0.00014827923],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012721085,0.000032447293,0.976606,0.00006371827,0.00006964334,0.00013550374,0.00091804715,0.001933296,0.007291178,0.00014679294,0.0005891285,0.012087049],"study_design_scores_gemma":[0.000001927223,0.000006843594,0.99794704,0.00000847253,0.000007026453,0.000009085997,0.00047408236,0.00095790514,0.00018665663,0.000010490612,0.00038518774,0.000005340109],"about_ca_topic_score_codex":0.9904322,"about_ca_topic_score_gemma":0.99618727,"teacher_disagreement_score":0.013659379,"about_ca_system_score_codex":0.013659379,"about_ca_system_score_gemma":0.007184163,"threshold_uncertainty_score":0.09910619},"labels":[],"label_agreement":null},{"id":"W2790120874","doi":"10.1002/eco.1968","title":"Dew formation characteristics at annual and daily scale in xerophyte shrub plantations at Southeast margin of Tengger desert, Northern China","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Biocrusts and Microbial Ecology","field":"Agricultural and Biological Sciences","cited_by":32,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"National Key Research and Development Program of China; University of British Columbia; National Natural Science Foundation of China","keywords":"Dew; Moss; Environmental science; Arid; Shrub; Dew point; Vegetation (pathology); Hydrology (agriculture); Humidity; Water content; Geology; Ecology; Geography; Meteorology; Condensation; Biology","score_opus":0.005011585032357282,"score_gpt":0.17865467837837445,"score_spread":0.17364309334601719,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2790120874","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9999021,0.000011142585,0.000011567366,0.0000010997925,2.2055798e-7,0.0000010437581,0.00003150312,6.235762e-7,0.00004062757],"genre_scores_gemma":[0.9997032,0.000013686171,0.000038315313,0.0000028826046,5.934652e-7,0.0000030031172,0.00011360088,5.9511905e-7,0.00012409888],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999163,0.000010589655,0.000008030319,0.000028816015,0.000014176633,0.000022044987],"domain_scores_gemma":[0.99982846,0.00001834449,0.00006181985,0.00001150979,0.000024861149,0.000054898308],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017969872,0.000174753,0.00016677375,0.0006223681,0.00027284023,0.00022805462,0.00016777124,0.000119560944,0.00037444918],"category_scores_gemma":[0.00014511221,0.00013076368,0.00014973157,0.0003461117,0.00020004016,0.00014774094,0.00019446405,0.00010947831,0.000052958596],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00011053937,0.000062087325,0.9669078,0.000020856432,0.000035862417,0.00021892705,0.0006340751,0.00013724767,0.02834711,0.00002162596,0.00003764131,0.0034662553],"study_design_scores_gemma":[4.718407e-7,0.000014700445,0.9997172,4.265609e-7,0.0000012770536,0.000017827244,0.00008363613,0.000051372266,0.000086269145,0.0000024375865,0.00002362127,6.7496086e-7],"about_ca_topic_score_codex":0.011635181,"about_ca_topic_score_gemma":0.041583046,"teacher_disagreement_score":0.011635181,"about_ca_system_score_codex":0.00034840425,"about_ca_system_score_gemma":0.00017022197,"threshold_uncertainty_score":0.023134947},"labels":[],"label_agreement":null},{"id":"W2790495519","doi":"10.1002/eco.1975","title":"Minor contribution of overstorey transpiration to landscape evapotranspiration in boreal permafrost peatlands","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":44,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Wilfrid Laurier University; University of Lethbridge; University of Guelph; Université de Montréal; Center for Northern Studies","funders":"Natural Sciences and Engineering Research Council of Canada; Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung; Stavros Niarchos Foundation; Canada Research Chairs; Deutscher Akademischer Austauschdienst; Alberta Innovates - Technology Futures","keywords":"Permafrost; Black spruce; Environmental science; Peat; Evapotranspiration; Eddy covariance; Transpiration; Wetland; Hydrology (agriculture); Boreal; Water cycle; Soil water; Taiga; Ecosystem; Geology; Ecology; Soil science; Forestry; Geography","score_opus":0.00520726494900769,"score_gpt":0.2087263735795646,"score_spread":0.20351910863055692,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2790495519","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997271,0.000027144659,0.00005491415,0.000002038379,3.771064e-7,6.243263e-7,0.000042396303,0.0000021143094,0.00014326436],"genre_scores_gemma":[0.99979895,0.0000127822,0.00006732448,0.0000016063257,5.237099e-7,9.747857e-7,0.000069328045,0.0000011738127,0.000047284022],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993587,0.000009538599,0.0000046294,0.000022438588,0.000011176923,0.000016244656],"domain_scores_gemma":[0.99983513,0.00003374181,0.000047411082,0.000015369273,0.000039536222,0.00002867456],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018894637,0.00019107225,0.00016766984,0.00039974513,0.0002593765,0.00039735588,0.0001746692,0.00011273114,0.00035441728],"category_scores_gemma":[0.0003749586,0.00011639706,0.000114471695,0.00030850153,0.00018675176,0.00033694686,0.00020480684,0.00009175463,0.00004773679],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015191565,0.00003082271,0.9662852,0.000025671829,0.00005985455,0.00006850471,0.00039715492,0.000619627,0.02221847,0.00006031813,0.000057956786,0.010024454],"study_design_scores_gemma":[4.0292764e-7,0.000005983459,0.99916637,8.763278e-7,0.0000032005196,0.0000148790505,0.000067782494,0.00044680084,0.00023699878,0.000009246977,0.000046417576,0.0000010856297],"about_ca_topic_score_codex":0.044636287,"about_ca_topic_score_gemma":0.16842613,"teacher_disagreement_score":0.044636287,"about_ca_system_score_codex":0.0003227136,"about_ca_system_score_gemma":0.0002585287,"threshold_uncertainty_score":0.088752925},"labels":[],"label_agreement":null},{"id":"W2792647811","doi":"10.1002/eco.1967","title":"A simple greenhouse experiment to explore the effect of cryogenic water extraction for tracing plant source water","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":36,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"","keywords":"Soil water; Extraction (chemistry); Environmental science; Loam; Water extraction; Greenhouse; Environmental chemistry; Soil science; Water content; Chemistry; Agronomy; Geology; Chromatography; Geotechnical engineering; Biology","score_opus":0.011848190454088237,"score_gpt":0.24126898778210715,"score_spread":0.2294207973280189,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2792647811","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98902446,0.00023489157,0.0071235388,0.00012962484,0.00011764729,0.00093726715,0.0010857682,0.00021257387,0.0011342199],"genre_scores_gemma":[0.9670674,0.00023176115,0.022196224,0.0006915138,0.000045686425,0.004585292,0.0017924194,0.00024088685,0.0031488582],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99943954,0.00009679003,0.000052920605,0.00027043908,0.00006759321,0.000072735864],"domain_scores_gemma":[0.99781847,0.0009421273,0.0003057858,0.00030817027,0.0002617211,0.00036370457],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00070996565,0.0008443096,0.0007032272,0.00024830346,0.0006097668,0.00036556684,0.0008283925,0.000825702,0.0014837141],"category_scores_gemma":[0.00075838016,0.0003828877,0.00057688414,0.00017897761,0.00046941906,0.0005134169,0.00077728933,0.0021468522,0.0003078323],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005218987,0.0005001097,0.00050210394,0.000055765577,0.000018628836,0.000040637307,0.00007198201,0.00011822979,0.99712855,0.000036608457,0.000055618504,0.00094969873],"study_design_scores_gemma":[0.0005138457,0.029445332,0.040873587,0.00003156541,0.00024929998,0.00012872675,0.00026883514,0.0032477025,0.91719884,0.00033739826,0.007583575,0.000121286546],"about_ca_topic_score_codex":0.0019445996,"about_ca_topic_score_gemma":0.0034128649,"teacher_disagreement_score":0.0019445996,"about_ca_system_score_codex":0.0007455369,"about_ca_system_score_gemma":0.0004626362,"threshold_uncertainty_score":0.0054092407},"labels":[],"label_agreement":null},{"id":"W2792883639","doi":"10.1002/eco.1942","title":"A hydrogeological landscape framework to identify peatland wildfire smouldering hot spots","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":25,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo; McMaster University; University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; Syncrude; Government of Alberta; Canadian Natural Resources Limited","keywords":"Peat; Boreal; Environmental science; Water table; Hydrology (agriculture); Groundwater; Hydrogeology; Geology; Physical geography; Ecology; Geography","score_opus":0.011615582985656204,"score_gpt":0.2759174002320419,"score_spread":0.26430181724638574,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2792883639","genre_codex":"empirical","genre_gemma":"methods","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"methods","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.96362346,0.00023679314,0.030500056,0.00015266705,0.0000059060103,0.00011896389,0.00141004,0.00013928107,0.0038129492],"genre_scores_gemma":[0.990234,0.00004035086,0.00926316,0.0000073982087,0.0000027793703,0.000019414507,0.00027238848,0.0000046837085,0.00015574374],"study_design_codex":"observational","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.999846,0.000044793975,0.000012193596,0.00003160176,0.000024389858,0.000041013634],"domain_scores_gemma":[0.99955684,0.00010271498,0.0001292399,0.000025327618,0.00009790248,0.000087863475],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00041978096,0.0003268618,0.00020654436,0.00607561,0.00033484757,0.0013494799,0.00042007017,0.0003419234,0.0014171508],"category_scores_gemma":[0.00086760975,0.00016988665,0.00029370558,0.0019754441,0.00043091536,0.0007523395,0.0009445173,0.00019167695,0.00010838286],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009445765,0.00015173394,0.8475031,0.0001476471,0.00021872309,0.00074438006,0.0012655981,0.07486356,0.005525879,0.006450827,0.00095534447,0.062078778],"study_design_scores_gemma":[0.000008402513,0.00006847837,0.628959,0.000089330184,0.00005354873,0.00028439393,0.003624671,0.3568076,0.00084733026,0.0068818848,0.0023334206,0.000041995463],"about_ca_topic_score_codex":0.020830948,"about_ca_topic_score_gemma":0.04632663,"teacher_disagreement_score":0.020830948,"about_ca_system_score_codex":0.00086370535,"about_ca_system_score_gemma":0.00034190566,"threshold_uncertainty_score":0.041419446},"labels":[],"label_agreement":null},{"id":"W2797015323","doi":"10.1002/eco.1983","title":"Do artificial velocity refuges mitigate the physiological and behavioural consequences of hydropeaking on a freshwater Iberian cyprinid?","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":35,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Carleton University","funders":"Instituto Superior Técnico; Fundação para a Ciência e a Tecnologia; Horizon 2020 Framework Programme; Canada Research Chairs","keywords":"Flume; Barbel; Environmental science; Flow (mathematics); Fish habitat; Fish <Actinopterygii>; Flow velocity; Flow conditions; Habitat; Hydrology (agriculture); Ecology; Biology; Fishery; Geology; Mechanics; Physics; Geotechnical engineering","score_opus":0.03033093237618556,"score_gpt":0.25197200998099867,"score_spread":0.2216410776048131,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2797015323","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994881,0.00007023094,0.00009410117,0.000041203246,0.000004798594,0.000006865924,0.000040363248,0.0000094682455,0.00024480064],"genre_scores_gemma":[0.99818265,0.00013664436,0.0006064297,0.00008278136,0.000005341028,0.000041801108,0.0001357124,0.000004813966,0.0008038157],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999403,0.000008085356,0.0000040912237,0.000019686082,0.000008478053,0.000019434867],"domain_scores_gemma":[0.999843,0.00000870549,0.000059174297,0.000012101739,0.00001445408,0.0000626147],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015263495,0.00028650122,0.0003739628,0.00025313464,0.00038121833,0.00037020535,0.0002716429,0.00036708981,0.0013480939],"category_scores_gemma":[0.00023351361,0.00014150834,0.00021066862,0.00009660721,0.00044362276,0.00029987952,0.0005356434,0.0003903409,0.00014429879],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0020402796,0.0005206352,0.069325976,0.0002487376,0.00009817692,0.00020352995,0.00051259995,0.0010241345,0.89997244,0.0001585994,0.0003598332,0.025535095],"study_design_scores_gemma":[0.000054548513,0.0058582546,0.95927846,0.00006137653,0.0000988878,0.00012621228,0.0012699674,0.0015320111,0.028769199,0.00016013432,0.0027554973,0.000035541292],"about_ca_topic_score_codex":0.0046999534,"about_ca_topic_score_gemma":0.013324414,"teacher_disagreement_score":0.0046999534,"about_ca_system_score_codex":0.0004327612,"about_ca_system_score_gemma":0.00038203888,"threshold_uncertainty_score":0.009345174},"labels":[],"label_agreement":null},{"id":"W2803878061","doi":"10.1002/eco.1987","title":"Remote sensing of ecosystem trajectories as a proxy indicator for watershed water balance","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo; University of Alberta; University of Lethbridge","funders":"Alberta Innovates - Technology Futures; Ministry of Economy, Trade and Industry; Natural Sciences and Engineering Research Council of Canada; Government of Alberta; Environment and Climate Change Canada; National Aeronautics and Space Administration","keywords":"Hydrology (agriculture); Environmental science; Wetland; Watershed; Water balance; Vegetation (pathology); Ecosystem; Geology; Ecology","score_opus":0.006564843523630648,"score_gpt":0.22158822243956527,"score_spread":0.21502337891593462,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2803878061","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9983796,0.000027993954,0.00036658286,0.000009098383,0.0000011061733,0.000004509274,0.0007456818,0.000022117265,0.0004434608],"genre_scores_gemma":[0.9984346,0.000021521115,0.0007480639,0.0000029955215,0.0000014148898,0.000003393681,0.00063024333,0.0000012530364,0.0001565122],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999198,0.000017661736,0.0000046220816,0.000015816273,0.000029567716,0.000012576205],"domain_scores_gemma":[0.9996842,0.00004515233,0.000116435906,0.000016170665,0.00008586239,0.000052248157],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020824355,0.00012352891,0.00009181441,0.00082989794,0.00015784602,0.00033306214,0.000151758,0.00008079002,0.0005974666],"category_scores_gemma":[0.00047256716,0.00006284705,0.000057507845,0.0012100281,0.00011999714,0.00014397553,0.00013422943,0.000089202826,0.00007158252],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010018726,0.00003417469,0.97915924,0.000012322392,0.000032039276,0.00003271531,0.00011049729,0.0024913775,0.006537206,0.000067096735,0.000252201,0.0111708995],"study_design_scores_gemma":[0.000002082365,0.00001601664,0.9953666,0.0000025594334,0.000004324717,0.000013487015,0.00009212941,0.0039248536,0.00036306737,0.000021057229,0.00019143749,0.000002468369],"about_ca_topic_score_codex":0.21820018,"about_ca_topic_score_gemma":0.45410538,"teacher_disagreement_score":0.21820018,"about_ca_system_score_codex":0.00080616435,"about_ca_system_score_gemma":0.00045342598,"threshold_uncertainty_score":0.43386024},"labels":[],"label_agreement":null},{"id":"W2805419169","doi":"10.1002/eco.1995","title":"Nutrient supply rates in a boreal extreme‐rich fen using ion exchange membranes","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"","funders":"Syncrude","keywords":"Nutrient; Wetland; Environmental science; Boreal; Environmental chemistry; Hydrology (agriculture); Hydraulic conductivity; Chemistry; Soil science; Geology; Ecology; Soil water; Biology","score_opus":0.020710343083258094,"score_gpt":0.2486299011620828,"score_spread":0.22791955807882472,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2805419169","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99948967,0.00004180542,0.0002311033,0.000011469912,0.0000014297731,0.0000035911155,0.000057324898,0.000008421599,0.00015509286],"genre_scores_gemma":[0.9982667,0.0000576183,0.0012056682,0.000011270153,0.0000011366201,0.000009155748,0.0000793227,0.0000040550267,0.00036499873],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9997849,0.000027599872,0.000011336561,0.000081185775,0.0000416971,0.000053317373],"domain_scores_gemma":[0.9998491,0.00004306715,0.00003127837,0.000008114242,0.000042363725,0.000026150661],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003887244,0.0002541901,0.00032124016,0.00016322112,0.00048975815,0.00044075205,0.0004006676,0.00032120926,0.00030344864],"category_scores_gemma":[0.0002858325,0.00015603978,0.00023215121,0.00014880528,0.0002464621,0.00042787488,0.00023010533,0.0002698337,0.00006681285],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0003383678,0.00004353017,0.009400428,0.000028419052,0.000009186805,0.000040965097,0.00016272003,0.00036472298,0.9871824,0.000030656756,0.000045253553,0.002353331],"study_design_scores_gemma":[0.000026299544,0.0008165927,0.2003519,0.000012347114,0.000040923034,0.00017953651,0.0009205595,0.010381708,0.7851813,0.00008165098,0.0019612005,0.00004617563],"about_ca_topic_score_codex":0.06165538,"about_ca_topic_score_gemma":0.06807835,"teacher_disagreement_score":0.06165538,"about_ca_system_score_codex":0.0011568752,"about_ca_system_score_gemma":0.0006037914,"threshold_uncertainty_score":0.122592986},"labels":[],"label_agreement":null},{"id":"W2810992669","doi":"10.1002/eco.2007","title":"Freshwater pearl mussels as a stream water stable isotope recorder","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Aquatic Invertebrate Ecology and Behavior","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Centre National de la Recherche Scientifique; Fonds National de la Recherche Luxembourg","keywords":"Stable isotope ratio; STREAMS; Isotopes of oxygen; Environmental science; Hydrology (agriculture); Precipitation; Isotope; Margaritifera; Mussel; Geology; Ecology; Geography; Biology; Geochemistry; Meteorology","score_opus":0.008398101215078895,"score_gpt":0.22684372464409436,"score_spread":0.21844562342901547,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2810992669","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98353463,0.00022001582,0.012036659,0.000050439245,0.000014442391,0.00005239402,0.0013126511,0.00027291809,0.002505861],"genre_scores_gemma":[0.95551145,0.00020873031,0.04091933,0.0000690289,0.000034799403,0.000072022944,0.001395366,0.000045469205,0.0017437991],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99974364,0.000027008047,0.00001242277,0.00011815534,0.00008846953,0.000010338989],"domain_scores_gemma":[0.99976414,0.000024993002,0.0000696562,0.000022345479,0.000091809656,0.000027201228],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037669894,0.00028252308,0.00024854104,0.0010124762,0.00036684386,0.00040706948,0.000355979,0.00023624662,0.0007358214],"category_scores_gemma":[0.00023107555,0.00023184752,0.00017407663,0.00080190937,0.0001742166,0.00029879136,0.00039799314,0.00015355801,0.00032966112],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00021423306,0.000061384766,0.6036582,0.000115098745,0.000095334166,0.0002986512,0.00029432293,0.0022749272,0.32906047,0.00009849848,0.00071941665,0.06310945],"study_design_scores_gemma":[0.000019779334,0.00019918094,0.90690583,0.000031247095,0.00007994748,0.00047938077,0.00022670535,0.026462823,0.0590544,0.00011930478,0.006379774,0.000041621784],"about_ca_topic_score_codex":0.002655863,"about_ca_topic_score_gemma":0.01209924,"teacher_disagreement_score":0.002655863,"about_ca_system_score_codex":0.00016277598,"about_ca_system_score_gemma":0.00020542956,"threshold_uncertainty_score":0.0052807927},"labels":[],"label_agreement":null},{"id":"W2883471285","doi":"10.1002/eco.2014","title":"Evaluating electrical resistivity tomography and crown surface area to estimate leaf area of sugar maple and yellow birch","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Université de Moncton; Ministère des Ressources naturelles et des Forêts; Université Laval","funders":"Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada","keywords":"Crown (dentistry); Maple; Yellow birch; Transpiration; Electrical resistivity tomography; Environmental science; Marsh; Sugar; Leaf area index; Aceraceae; Botany; Hydrology (agriculture); Geology; Electrical resistivity and conductivity; Ecology; Materials science; Biology; Wetland; Physics","score_opus":0.01617432622672248,"score_gpt":0.2734647775221507,"score_spread":0.2572904512954282,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2883471285","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9994141,0.00003649568,0.0003891692,0.000002669033,4.5634695e-7,0.0000032486948,0.000030354215,0.000004342295,0.000119298275],"genre_scores_gemma":[0.999423,0.000014799748,0.00045791574,0.000002822395,6.8198534e-7,0.0000028873924,0.000044192144,8.767201e-7,0.000052780066],"study_design_codex":"observational","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999859,0.000045312034,0.000004876853,0.000030187663,0.00003864008,0.000022019729],"domain_scores_gemma":[0.99941075,0.0002426816,0.00009402096,0.000019291268,0.00016512022,0.00006821442],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00050565315,0.00030739265,0.00019341704,0.0009351942,0.00016441278,0.0004918189,0.00020278209,0.00021706994,0.00022115119],"category_scores_gemma":[0.00089109875,0.00008947843,0.000079046404,0.0004349569,0.00013800923,0.00026298294,0.00018837668,0.00011123757,0.00006156846],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000108177555,0.000047727695,0.97329795,0.0000124135695,0.000026913609,0.00008299468,0.00012034394,0.0021575738,0.013996969,0.000026094172,0.00004258938,0.010080239],"study_design_scores_gemma":[0.0000037574632,0.00005968519,0.9830615,0.0000029168505,0.000013750915,0.000050969622,0.00023027782,0.014929162,0.0015354344,0.000026635043,0.000081711645,0.000004309354],"about_ca_topic_score_codex":0.02288945,"about_ca_topic_score_gemma":0.055330236,"teacher_disagreement_score":0.02288945,"about_ca_system_score_codex":0.00034037937,"about_ca_system_score_gemma":0.00016355919,"threshold_uncertainty_score":0.04551238},"labels":[],"label_agreement":null},{"id":"W2885464363","doi":"10.1002/eco.2030","title":"Response of herbaceous wetland plant species to changing precipitation regimes","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Coastal wetland ecosystem dynamics","field":"Environmental Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"General Electric (Canada); University of Toronto","funders":"University of Toronto; Natural Sciences and Engineering Research Council of Canada; Government of Canada","keywords":"Precipitation; Herbaceous plant; Wetland; Environmental science; Evapotranspiration; Forb; Water content; Agronomy; Plant community; Biomass (ecology); Ecology; Biology; Ecological succession; Grassland; Geography; Geology","score_opus":0.007613772464494217,"score_gpt":0.21052879010413805,"score_spread":0.20291501763964384,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2885464363","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99978083,0.00002042436,0.000054348475,0.000004281848,0.0000010271007,0.0000043629825,0.00004752906,0.0000038805133,0.00008336719],"genre_scores_gemma":[0.99944943,0.000021737707,0.00015914517,0.000026909613,0.0000017031565,0.0000146547445,0.00015984027,0.0000026408354,0.00016403843],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999229,0.000020296031,0.0000067005976,0.000021826128,0.000012070983,0.00001627535],"domain_scores_gemma":[0.99962354,0.00009223517,0.000100897596,0.000029867597,0.00004880992,0.000104543054],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017723336,0.00014266619,0.00023331799,0.00016921299,0.00022570064,0.00023152101,0.00017976265,0.00018947497,0.0006600624],"category_scores_gemma":[0.00026819602,0.00014240944,0.00012623084,0.000107337175,0.00017199988,0.00013579814,0.0002237342,0.0003120816,0.000082738],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00042415407,0.000103250015,0.04019484,0.000049984905,0.000050185758,0.00009554458,0.000093372255,0.00039210953,0.95657295,0.00002227859,0.000045334124,0.001955893],"study_design_scores_gemma":[0.000020569565,0.00081398175,0.9671931,0.0000038232247,0.000016978966,0.000115601404,0.0001735578,0.0014818126,0.02970434,0.000044167107,0.0004220953,0.000009917031],"about_ca_topic_score_codex":0.0019843227,"about_ca_topic_score_gemma":0.0026948943,"teacher_disagreement_score":0.0019843227,"about_ca_system_score_codex":0.00025861696,"about_ca_system_score_gemma":0.000103383594,"threshold_uncertainty_score":0.00394547},"labels":[],"label_agreement":null},{"id":"W2885575314","doi":"10.1002/eco.2018","title":"Linking geomorphic change due to floods to spatial hydraulic habitat dynamics","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Flood myth; Beach morphodynamics; River morphology; Hydrology (agriculture); Environmental science; Ecohydrology; Fluvial; Sediment transport; Riffle; Geology; Habitat; Sediment; Ecosystem; Ecology; Geomorphology; Geography; Structural basin","score_opus":0.013418537916599116,"score_gpt":0.23226099278374968,"score_spread":0.21884245486715057,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2885575314","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99947566,0.0000070228552,0.00030258062,0.000008981889,9.609083e-7,0.0000023398054,0.000045680838,0.000004633505,0.00015215056],"genre_scores_gemma":[0.99983966,0.0000047313893,0.00007421826,0.0000016764194,8.0566457e-7,0.0000015429723,0.000027274926,5.5775735e-7,0.000049472375],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99989724,0.000036219153,0.0000079026995,0.000021721973,0.000016325394,0.000020654872],"domain_scores_gemma":[0.99929714,0.00033125182,0.0001912292,0.000049598126,0.000065486325,0.00006529294],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00044743653,0.00009852014,0.00008719231,0.0007179347,0.00014926856,0.0004357786,0.00011511754,0.0001886659,0.0008526829],"category_scores_gemma":[0.0012871,0.00008426874,0.000110483204,0.0004334825,0.00037407083,0.00036012114,0.00036258178,0.00015913602,0.000071644936],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009490205,0.000061176914,0.977514,0.000011211072,0.000057126734,0.00007809587,0.00021954475,0.00914977,0.0054063485,0.00017289387,0.00009047563,0.0071444763],"study_design_scores_gemma":[0.0000012964016,0.00002883978,0.99401903,9.0915967e-7,0.000005114733,0.000022426711,0.00015055928,0.0053312453,0.00024512174,0.00014119234,0.00005132057,0.0000028385716],"about_ca_topic_score_codex":0.005248298,"about_ca_topic_score_gemma":0.0081620645,"teacher_disagreement_score":0.005248298,"about_ca_system_score_codex":0.00031456028,"about_ca_system_score_gemma":0.00016845154,"threshold_uncertainty_score":0.010435522},"labels":[],"label_agreement":null},{"id":"W2886975461","doi":"10.1002/eco.2020","title":"The effect of compression on <i>Sphagnum</i> hydrophysical properties: Implications for increasing hydrological connectivity in restored cutover peatlands","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"The Scarborough Hospital; University of Toronto; University of Waterloo","funders":"","keywords":"Sphagnum; Moss; Peat; Hydraulic conductivity; Macropore; Soil science; Compression (physics); Environmental science; Water retention; Chemistry; Materials science; Composite material; Soil water; Ecology; Biology","score_opus":0.011840357713283338,"score_gpt":0.2538006176284663,"score_spread":0.24196025991518294,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2886975461","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996518,0.000051006005,0.000100884754,0.000005315551,9.674856e-7,0.0000044002454,0.00002822741,0.000005008951,0.00015242226],"genre_scores_gemma":[0.999716,0.000020863294,0.00015569547,0.0000059543004,8.568793e-7,0.0000033523106,0.000040817198,0.0000010774378,0.000055400586],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99990153,0.0000142207555,0.000008216727,0.00001965928,0.000032319516,0.000024013749],"domain_scores_gemma":[0.9996265,0.00006392144,0.00011721496,0.000021481274,0.000083361316,0.00008734775],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025625015,0.00022363184,0.0001596144,0.00021153028,0.00020832776,0.00035556094,0.00021631314,0.00018608713,0.0007272869],"category_scores_gemma":[0.0003562745,0.00009794592,0.00012818396,0.00012694956,0.00041688062,0.00026162248,0.00018541534,0.00024327134,0.00006375067],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005925825,0.000100384896,0.06408309,0.00007950222,0.000029713,0.00015762608,0.00013677719,0.0005276017,0.9283751,0.000049684364,0.000040551044,0.00582749],"study_design_scores_gemma":[0.000010489955,0.0007068821,0.84445626,0.0000084367075,0.000019272355,0.00016046064,0.00033968806,0.001190837,0.15271589,0.000037732174,0.00034525068,0.000008758168],"about_ca_topic_score_codex":0.0050179968,"about_ca_topic_score_gemma":0.0065363473,"teacher_disagreement_score":0.0050179968,"about_ca_system_score_codex":0.00039851232,"about_ca_system_score_gemma":0.00027764632,"threshold_uncertainty_score":0.009977579},"labels":[],"label_agreement":null},{"id":"W2889944277","doi":"10.1002/eco.2047","title":"Eddy covariance based surface‐atmosphere exchange and crop coefficient determination in a mountainous peatland","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Niedersächsisches Ministerium für Wissenschaft und Kultur; Deutscher Akademischer Austauschdienst","keywords":"Eddy covariance; FluxNet; Ombrotrophic; Peat; Bog; Evapotranspiration; Environmental science; Atmospheric sciences; Fetch; Bowen ratio; Atmosphere (unit); Hydrology (agriculture); Water content; Sensible heat; Soil science; Ecosystem; Geology; Meteorology; Geography; Ecology; Geomorphology","score_opus":0.0075501287333593105,"score_gpt":0.22643639589684278,"score_spread":0.21888626716348347,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2889944277","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995826,0.000010654375,0.00027215006,0.0000019382028,6.097884e-7,9.106692e-7,0.00005357236,0.0000059299114,0.00007170641],"genre_scores_gemma":[0.9995284,0.000005620312,0.0003273778,7.556471e-7,6.3789287e-7,0.000001057174,0.000093129136,0.0000018804261,0.000041256102],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999249,0.000018541641,0.0000053540566,0.000023402916,0.000012723167,0.000014981437],"domain_scores_gemma":[0.9997868,0.00008154901,0.00004290574,0.000024289902,0.000045517732,0.000018982706],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036197444,0.00017626969,0.0001777465,0.00035990286,0.00020276934,0.00029511887,0.00017146606,0.00012371657,0.00024914724],"category_scores_gemma":[0.000576387,0.00009823496,0.00018344492,0.00037030893,0.00011551659,0.00016177054,0.00011902267,0.00009515949,0.000050503884],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000274127,0.0001011084,0.9429429,0.00003239765,0.00015356703,0.00030114743,0.0002954295,0.013528922,0.027254872,0.0001516036,0.00019100246,0.014772848],"study_design_scores_gemma":[0.000004896505,0.00001734315,0.9671234,0.0000024479848,0.000014109258,0.000056487053,0.00006182178,0.030921742,0.0016226406,0.000022956647,0.00014484342,0.000007345325],"about_ca_topic_score_codex":0.061681382,"about_ca_topic_score_gemma":0.066606425,"teacher_disagreement_score":0.061681382,"about_ca_system_score_codex":0.00031235575,"about_ca_system_score_gemma":0.00025540523,"threshold_uncertainty_score":0.12264472},"labels":[],"label_agreement":null},{"id":"W2897764688","doi":"10.1002/eco.2054","title":"Ecohydrological dynamics in the Alps: Insights from a modelling analysis of the spatial variability","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Montréal; Center for Northern Studies","funders":"Stavros Niarchos Foundation; Eidgenössische Technische Hochschule Zürich; Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung","keywords":"Ecohydrology; Environmental science; Ecosystem; Climate change; Vegetation (pathology); Temporal scales; Physical geography; Ecology; Geography","score_opus":0.010507549846631348,"score_gpt":0.21151280840258885,"score_spread":0.2010052585559575,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2897764688","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9950257,0.000065171844,0.0035816187,0.00013729282,0.000004347212,0.000005238555,0.0001825088,0.0000429867,0.0009551343],"genre_scores_gemma":[0.9989784,0.00003159335,0.00081540406,0.000009049721,0.0000047115427,0.0000046595387,0.000080560654,0.000006286297,0.00006929136],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998816,0.000048893584,0.000009242608,0.000025635623,0.000014307002,0.00002023482],"domain_scores_gemma":[0.9993806,0.000352551,0.00010972445,0.000065747234,0.000049244,0.00004216279],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00045161208,0.00029419546,0.00029271154,0.00048325193,0.00035180984,0.0009041349,0.00049265596,0.000590119,0.00067010237],"category_scores_gemma":[0.0013149036,0.00019087977,0.000585078,0.0006105312,0.00056388706,0.00044565237,0.00041088596,0.00034494858,0.000053062075],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000024658906,0.00004410147,0.023289872,0.0000142303,0.000037374077,0.00006302898,0.00005877318,0.97237664,0.0016481521,0.0010480654,0.00010798203,0.0012870419],"study_design_scores_gemma":[0.000010106672,0.000007855051,0.0056801024,0.000001956618,0.000004247938,0.000007920276,0.000020021615,0.99369603,0.00011176227,0.00035697222,0.00009888424,0.0000040732743],"about_ca_topic_score_codex":0.026645847,"about_ca_topic_score_gemma":0.009760486,"teacher_disagreement_score":0.026645847,"about_ca_system_score_codex":0.00056567806,"about_ca_system_score_gemma":0.0003970189,"threshold_uncertainty_score":0.052981496},"labels":[],"label_agreement":null},{"id":"W2900436125","doi":"10.1002/eco.2057","title":"Hydrological and thermal properties of moss and lichen species on rock barrens: Implications for turtle nesting habitat","year":2018,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":26,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Moss; Sphagnum; Environmental science; Habitat; Ecology; Water content; Soil water; Organic matter; Peat; Geology; Soil science; Biology","score_opus":0.026894118400379557,"score_gpt":0.23279948316012897,"score_spread":0.2059053647597494,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2900436125","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.999627,0.00003002927,0.000016826894,0.000006397815,2.8525926e-7,0.0000025433246,0.00009484407,0.0000015930403,0.00022060005],"genre_scores_gemma":[0.9996768,0.000019468123,0.000060574497,0.0000046731247,5.594323e-7,0.000002717698,0.00010432095,7.683162e-7,0.00012998685],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999256,0.000007424025,0.0000028235124,0.000015963979,0.00002168136,0.000026459833],"domain_scores_gemma":[0.99973696,0.000020493193,0.00007081498,0.000008027287,0.00005738739,0.00010630386],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010101216,0.00011424672,0.00015292325,0.00046861052,0.00075532537,0.00043190503,0.00021715752,0.00014291113,0.0010600499],"category_scores_gemma":[0.00025103308,0.000082820574,0.00009708077,0.000397176,0.00039939105,0.00016703061,0.00021084586,0.00012542025,0.00008309603],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014130368,0.000033306496,0.98171574,0.000020215652,0.000026130081,0.00010686474,0.00076194917,0.00016862234,0.013476704,0.000031806536,0.000117002965,0.0034002524],"study_design_scores_gemma":[4.2217312e-7,0.0000057425646,0.99967337,9.214191e-7,0.0000010891794,0.000008420593,0.00018572874,0.00004027759,0.00003610804,0.00000167276,0.000045545305,6.979082e-7],"about_ca_topic_score_codex":0.64726186,"about_ca_topic_score_gemma":0.8982002,"teacher_disagreement_score":0.64726186,"about_ca_system_score_codex":0.0020709047,"about_ca_system_score_gemma":0.0009508804,"threshold_uncertainty_score":0.70963097},"labels":[],"label_agreement":null},{"id":"W2914268781","doi":"10.1002/eco.2074","title":"Tree‐ring stable isotopes show different ecophysiological strategies in native and invasive woody species of a semiarid riparian ecosystem in the Great Plains of the United States","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Campbell Scientific (Canada)","funders":"Universidad del Magdalena","keywords":"Riparian zone; Environmental science; Streamflow; Introduced species; Riparian forest; Invasive species; Ecology; Vegetation (pathology); Understory; Dendrochronology; Tamarix; Woody plant; Biology; Habitat; Geography; Drainage basin; Canopy","score_opus":0.017730571831925213,"score_gpt":0.2134503621283928,"score_spread":0.19571979029646758,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2914268781","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998357,0.000015159817,0.000016337875,0.000003429298,3.5377488e-7,8.312715e-7,0.000036880243,0.0000016548213,0.000089614594],"genre_scores_gemma":[0.9997004,0.000017202408,0.00004981158,0.000010136836,7.397171e-7,0.0000023913021,0.00012663477,8.697796e-7,0.00009170957],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999423,0.000011365129,0.000003787746,0.000019787441,0.000010295365,0.000012420915],"domain_scores_gemma":[0.99978036,0.00003654385,0.000065362525,0.0000141690825,0.000036002828,0.00006764863],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014301365,0.00011781894,0.000115915034,0.00039919026,0.00020501198,0.00026713902,0.00015521752,0.00011157976,0.0004795776],"category_scores_gemma":[0.00021304574,0.00010395687,0.00009633739,0.00026202988,0.0002132811,0.0001897147,0.00022532092,0.00011947091,0.00006637752],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00009061018,0.000072700816,0.97561896,0.000011684375,0.000064096115,0.00009160214,0.00055801065,0.00011383318,0.020400003,0.000038073093,0.000090760834,0.0028497148],"study_design_scores_gemma":[0.0000010726152,0.000010732307,0.99956733,6.807094e-7,0.0000026522403,0.00002290631,0.00012435674,0.000119535696,0.00009818776,0.0000052565715,0.000046486628,7.7052357e-7],"about_ca_topic_score_codex":0.01852414,"about_ca_topic_score_gemma":0.062131945,"teacher_disagreement_score":0.01852414,"about_ca_system_score_codex":0.00025358613,"about_ca_system_score_gemma":0.00012602085,"threshold_uncertainty_score":0.03683263},"labels":[],"label_agreement":null},{"id":"W2915058129","doi":"10.1002/eco.2080","title":"Characteristics and development trends of ecohydrology in lakes and reservoirs: Insights from bibliometrics","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"","funders":"Chinese Academy of Sciences; National Natural Science Foundation of China","keywords":"Ecohydrology; Environmental science; China; Water resources; Hydrology (agriculture); Lake ecosystem; Ecosystem; Environmental resource management; Ecology; Geography; Geology","score_opus":0.010468852971162684,"score_gpt":0.21259842529032535,"score_spread":0.20212957231916268,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2915058129","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.88494056,0.058679864,0.002018305,0.002465092,0.00016088021,0.00019355713,0.031432334,0.00018429534,0.019925078],"genre_scores_gemma":[0.9681885,0.018448552,0.0016661756,0.00009149155,0.00020983329,0.00013645379,0.010567077,0.000021661235,0.0006702036],"study_design_codex":"observational","study_design_gemma":"not_applicable","domain_scores_codex":[0.9929524,0.0012036823,0.0018702375,0.0006009072,0.0030918324,0.0002809044],"domain_scores_gemma":[0.94014984,0.033377618,0.015281937,0.0012303798,0.008962027,0.0009982514],"candidate_categories":["bibliometrics"],"consensus_categories":[],"category_scores_codex":[0.0056592296,0.00039659863,0.0009820468,0.12958957,0.00078447274,0.0041354857,0.00050851336,0.00049591914,0.002039371],"category_scores_gemma":[0.0319136,0.00017918799,0.000997599,0.18566,0.0006849666,0.004287642,0.001516101,0.0003083563,0.00031415868],"study_design_candidate":"not_applicable","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001061041,0.00008688098,0.8382312,0.009260865,0.0012189288,0.00044700858,0.0040124254,0.0011093266,0.0009934049,0.003550592,0.007318074,0.13366517],"study_design_scores_gemma":[0.00001279897,0.000052461808,0.9709891,0.0014481497,0.0006180077,0.00046264307,0.004905308,0.0023702746,0.00045894252,0.001650622,0.016973905,0.000057736837],"about_ca_topic_score_codex":0.0070746094,"about_ca_topic_score_gemma":0.0077725966,"teacher_disagreement_score":0.87041044,"about_ca_system_score_codex":0.0019120497,"about_ca_system_score_gemma":0.0024303475,"threshold_uncertainty_score":0.029929161},"labels":[{"model":"gemma","categories":["bibliometrics"],"domain":null,"study_design":"observational","genre":"empirical","about_ca_system":false,"about_ca_topic":false,"confidence":"low"},{"model":"gpt","categories":["bibliometrics"],"domain":null,"study_design":"observational","genre":"empirical","about_ca_system":false,"about_ca_topic":false,"confidence":"low"}],"label_agreement":"agree"},{"id":"W2924270864","doi":"10.1002/eco.2090","title":"The accuracy of ecological flow metrics derived using a physics‐based distributed rainfall–runoff model in the Great Plains, USA","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"","funders":"South Central Climate Adaptation Science Center; U.S. Geological Survey","keywords":"Streamflow; Drainage basin; Rain gauge; Surface runoff; Hydrology (agriculture); Environmental science; Quantile; Catchment hydrology; Structural basin; Flow (mathematics); Ecology; Statistics; Geology; Meteorology; Precipitation; Geography; Mathematics; Cartography; Geomorphology","score_opus":0.023331279755911618,"score_gpt":0.24859388730359927,"score_spread":0.22526260754768765,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2924270864","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9973214,0.000023201386,0.0015182589,0.00006762657,0.0000030562062,0.0000054979405,0.00033434524,0.00011917105,0.00060733454],"genre_scores_gemma":[0.9988549,0.000012501417,0.00071267824,0.000012379938,0.0000011401937,0.000002733816,0.0003249718,0.000006728571,0.000071996415],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997453,0.00006892267,0.000017651835,0.00008689217,0.000054071512,0.000027107928],"domain_scores_gemma":[0.9990503,0.00034322593,0.00014211706,0.00012784092,0.0002780843,0.000058402264],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000978227,0.0002573485,0.00018538511,0.00042400963,0.0002772525,0.0008161787,0.0005968755,0.00033180902,0.00028259231],"category_scores_gemma":[0.003287244,0.00018824471,0.00037109593,0.0004930715,0.00036541073,0.00053873786,0.00031621676,0.00027343113,0.000073575975],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000116442534,0.00013560192,0.4527906,0.000025073692,0.00020432853,0.000089759975,0.00017534172,0.5281677,0.0021824471,0.00083420705,0.0012590291,0.014019483],"study_design_scores_gemma":[0.000022590539,0.000026833864,0.22018042,0.000009912428,0.000019059878,0.000018122948,0.00008609886,0.77847826,0.0005182581,0.00027038765,0.0003521489,0.000017885694],"about_ca_topic_score_codex":0.3803654,"about_ca_topic_score_gemma":0.3029875,"teacher_disagreement_score":0.3803654,"about_ca_system_score_codex":0.001727115,"about_ca_system_score_gemma":0.001348953,"threshold_uncertainty_score":0.75630283},"labels":[],"label_agreement":null},{"id":"W2943488055","doi":"10.1002/eco.2100","title":"Shrub abundance contributes to shifts in dissolved organic carbon concentration and chemistry in a continental bog exposed to drainage and warming","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Calgary; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Innovates - Technology Futures","keywords":"Environmental science; Dissolved organic carbon; Peat; Shrub; Bog; Carbon cycle; Soil carbon; Biogeochemical cycle; Permafrost; Hydrology (agriculture); Carbon sink; Wetland; Ecosystem; Environmental chemistry; Soil water; Ecology; Chemistry; Soil science; Geology","score_opus":0.0030866919803229807,"score_gpt":0.19217528776577775,"score_spread":0.18908859578545475,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2943488055","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998301,0.000021360656,0.000017232012,0.000004316936,5.1994454e-7,0.0000010908451,0.000060429258,0.0000035025657,0.00006138287],"genre_scores_gemma":[0.99972874,0.0000116132505,0.00004319256,0.000006416389,7.2638005e-7,0.0000013957042,0.000102336424,0.0000011018302,0.00010454428],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993277,0.000009538097,0.0000029036892,0.000019174056,0.000011095908,0.000024628056],"domain_scores_gemma":[0.999788,0.000016578058,0.000046752826,0.000013073005,0.000039143662,0.00009651475],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013207812,0.00016948266,0.0002254488,0.0003949742,0.00041328973,0.00044577345,0.00021387225,0.0001699411,0.0005327523],"category_scores_gemma":[0.00014106873,0.00012020718,0.00016304845,0.0002659984,0.00031417128,0.000100538586,0.00023765274,0.0001499629,0.00006276201],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00032011585,0.000084710984,0.94254434,0.000015300351,0.00007006905,0.0001091137,0.00025579796,0.00027906426,0.053989507,0.000027236443,0.000102838094,0.0022018454],"study_design_scores_gemma":[4.394412e-7,0.000008500096,0.99966836,4.0168175e-7,0.0000027867566,0.000007832523,0.00007574176,0.000095219126,0.00011113999,0.0000029129521,0.000025838246,7.224757e-7],"about_ca_topic_score_codex":0.19564562,"about_ca_topic_score_gemma":0.3704603,"teacher_disagreement_score":0.19564562,"about_ca_system_score_codex":0.0011710608,"about_ca_system_score_gemma":0.00051285856,"threshold_uncertainty_score":0.3890137},"labels":[],"label_agreement":null},{"id":"W2945020977","doi":"10.1002/eco.2102","title":"Modelling the possible impacts of climate change on the thermal regime and macroinvertebrate species of a regulated prairie river","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Global Institute for Water Security; Water Security Agency; University of Saskatchewan","funders":"","keywords":"Environmental science; Climate change; Hydrology (agriculture); Forcing (mathematics); Streamflow; Dew point; Ecosystem; Wind speed; Inflow; Range (aeronautics); Atmospheric sciences; Climatology; Ecology; Drainage basin; Meteorology; Geography; Geology","score_opus":0.0153762866421136,"score_gpt":0.200348662118368,"score_spread":0.1849723754762544,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2945020977","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99770206,0.000013228051,0.0013493828,0.00002990204,0.000002136333,0.00001294454,0.00017713102,0.000027200216,0.0006860709],"genre_scores_gemma":[0.9984907,0.000013933424,0.0011105783,0.000007631938,9.964158e-7,0.000013478413,0.00013031393,0.0000040850005,0.00022834801],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998394,0.000053336502,0.000009900126,0.0000439966,0.000021502085,0.000031881653],"domain_scores_gemma":[0.9997209,0.00012551223,0.00003342879,0.000027534801,0.0000653726,0.000027243768],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004293593,0.00026564786,0.00020551635,0.00022036333,0.0003692313,0.00063833914,0.0007347812,0.0005957422,0.0009266593],"category_scores_gemma":[0.00079296256,0.0003161372,0.0006226497,0.0002964462,0.0003007359,0.00035629256,0.00034662863,0.00044056342,0.00009097209],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006785545,0.00008226256,0.06384985,0.000021534011,0.00008327266,0.000079746205,0.000053838907,0.92924494,0.0037137298,0.00025231368,0.00015048677,0.0024002055],"study_design_scores_gemma":[0.000018450688,0.00006619075,0.030851617,0.0000038242474,0.000027167222,0.000008881675,0.000061992054,0.96794087,0.0006975283,0.00009676009,0.00021714105,0.00000971712],"about_ca_topic_score_codex":0.19725162,"about_ca_topic_score_gemma":0.19914806,"teacher_disagreement_score":0.19725162,"about_ca_system_score_codex":0.0014530773,"about_ca_system_score_gemma":0.0011384571,"threshold_uncertainty_score":0.39220697},"labels":[],"label_agreement":null},{"id":"W2948756735","doi":"10.1002/eco.2123","title":"Changes in carbon flux and spectral reflectance of <i>Sphagnum</i> mosses as a result of simulated drought","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"National Centre for Earth Observation; Natural Environment Research Council; Sight Research UK; James Hutton Institute; Scottish Government","keywords":"Sphagnum; Peat; Environmental science; Desiccation; Precipitation; Respiration; Atmospheric sciences; Carbon fibers; Photosynthesis; Soil science; Hydrology (agriculture); Botany; Ecology; Biology; Geology; Geography; Mathematics; Meteorology","score_opus":0.004786220036009531,"score_gpt":0.2219472241207824,"score_spread":0.21716100408477287,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2948756735","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99961483,0.000006886949,0.00016634754,0.0000036174392,0.0000017098772,0.000002768204,0.00010425362,0.00001334539,0.000086295695],"genre_scores_gemma":[0.9996018,0.000006264555,0.0001221772,0.000005044828,5.360686e-7,0.0000071787117,0.00016247432,0.000003308611,0.0000912529],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999336,0.000012276322,0.0000043146088,0.000016885258,0.000014804372,0.000018149112],"domain_scores_gemma":[0.9997192,0.00012629812,0.00004244136,0.00002109565,0.000040963794,0.00004995171],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020501959,0.00025752373,0.00024994047,0.00013730618,0.00015626432,0.00023373544,0.0002265715,0.00028630407,0.0007687335],"category_scores_gemma":[0.0003515453,0.00011116229,0.0002331454,0.0001351967,0.00016986948,0.0001532254,0.00013958641,0.00029457634,0.00011010248],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0037029055,0.0004455704,0.053810235,0.0001240466,0.00016718116,0.00032633662,0.00016396496,0.047426514,0.888589,0.000108439555,0.00033404952,0.0048017832],"study_design_scores_gemma":[0.00016562281,0.0030179278,0.66492605,0.000014273555,0.000114189264,0.00018518048,0.0002729686,0.13776815,0.19250782,0.00015039096,0.0008157381,0.000061690844],"about_ca_topic_score_codex":0.0052738045,"about_ca_topic_score_gemma":0.0027065175,"teacher_disagreement_score":0.0052738045,"about_ca_system_score_codex":0.0003846144,"about_ca_system_score_gemma":0.00009719184,"threshold_uncertainty_score":0.010486245},"labels":[],"label_agreement":null},{"id":"W2954441596","doi":"10.1002/eco.2133","title":"Climate‐driven change in the water sourced by trees in a de‐glaciating proglacial fore‐field, Torres del Paine, Chile","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Cryospheric studies and observations","field":"Earth and Planetary Sciences","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"Université de Lausanne","keywords":"Meltwater; Precipitation; Glacier; Glacial period; Climate change; Geology; Physical geography; Environmental science; Hydrology (agriculture); Geomorphology; Oceanography; Geography; Meteorology","score_opus":0.011279647091968274,"score_gpt":0.21390908697103347,"score_spread":0.2026294398790652,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2954441596","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99912196,0.000044125907,0.000025636036,0.000024744835,0.0000012486043,0.00000594965,0.0003895626,0.000007387264,0.00037943388],"genre_scores_gemma":[0.9990963,0.00004573257,0.000046899895,0.000011406309,0.0000015753778,0.000014729446,0.00042261102,0.0000025398542,0.0003582226],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99994314,0.00000623595,0.0000032597243,0.00001806412,0.000008513671,0.000020878426],"domain_scores_gemma":[0.9997415,0.000039969764,0.000059942187,0.000017084825,0.000072129704,0.00006935203],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016607092,0.00020017964,0.00020174145,0.00063328806,0.0003523729,0.00054778176,0.00040104895,0.00017351999,0.0009492885],"category_scores_gemma":[0.00026545493,0.00010415501,0.00017474599,0.00073740684,0.0003974487,0.00022718673,0.00038860753,0.00023370181,0.00012607554],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00054537127,0.00014247184,0.95355636,0.00013450145,0.00013656795,0.00057317625,0.0021161812,0.0015898644,0.03110727,0.00018526308,0.00084711454,0.009065914],"study_design_scores_gemma":[0.0000063265825,0.000015588474,0.99864537,0.000003196295,0.0000049764876,0.000014552631,0.00049065467,0.00028556774,0.00018793491,0.000015554037,0.00032687187,0.0000034190273],"about_ca_topic_score_codex":0.12687342,"about_ca_topic_score_gemma":0.1701886,"teacher_disagreement_score":0.12687342,"about_ca_system_score_codex":0.00143512,"about_ca_system_score_gemma":0.00063773134,"threshold_uncertainty_score":0.25226992},"labels":[],"label_agreement":null},{"id":"W2963824774","doi":"10.1002/eco.2139","title":"Exploring the role of hydraulic conductivity on the contribution of the hyporheic zone to in‐stream nitrogen uptake","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":31,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Agence française pour la biodiversité; Office National de l’Eau et des Milieux Aquatiques; Canadian Institute for Advanced Research","keywords":"Hyporheic zone; Benthic zone; Environmental science; Hydrology (agriculture); Hydraulic conductivity; STREAMS; Nutrient; Ecosystem; Nitrogen; Soil science; Ecology; Surface water; Geology; Chemistry; Environmental engineering; Biology","score_opus":0.015764626996212897,"score_gpt":0.19282533629772305,"score_spread":0.17706070930151016,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2963824774","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99926454,0.00005041007,0.00044874835,0.000006015821,8.303721e-7,0.000002923654,0.00003328171,0.0000056737354,0.00018754297],"genre_scores_gemma":[0.9996655,0.000022101169,0.00019808725,0.000005082687,5.6488847e-7,0.0000033759688,0.00001693418,0.0000019335487,0.00008635531],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99990475,0.000021479795,0.0000060232237,0.00003159859,0.000015455862,0.000020548381],"domain_scores_gemma":[0.99972755,0.00012495102,0.000056835932,0.000015225388,0.000037060498,0.000038355585],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00024339152,0.00021398115,0.00025731415,0.00022423135,0.00013596748,0.00045657286,0.00018473418,0.00035361806,0.0005800702],"category_scores_gemma":[0.00034688765,0.00015625596,0.00017997084,0.00013691084,0.00039779686,0.0004547797,0.00031960005,0.00028633056,0.00005617763],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00028978373,0.000049584134,0.023889601,0.00005923678,0.0000254345,0.000045696386,0.00011501072,0.0017317635,0.97100675,0.0001259908,0.0000144636715,0.0026467163],"study_design_scores_gemma":[0.000027123242,0.0006165919,0.7046616,0.000018225179,0.00010483616,0.00010307233,0.00042648532,0.02192587,0.2709879,0.0003751491,0.00072226103,0.00003085015],"about_ca_topic_score_codex":0.001928005,"about_ca_topic_score_gemma":0.001949997,"teacher_disagreement_score":0.001928005,"about_ca_system_score_codex":0.0003424338,"about_ca_system_score_gemma":0.00017991473,"threshold_uncertainty_score":0.003833592},"labels":[],"label_agreement":null},{"id":"W2965372205","doi":"10.1002/eco.2141","title":"Hydrogeologic setting overrides any influence of wildfire on pore water dissolved organic carbon concentration and quality at a boreal fen","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Dissolved organic carbon; Peat; Boreal; Environmental science; Snowmelt; Water table; Hydrology (agriculture); Hydrogeology; Groundwater; Environmental chemistry; Surface runoff; Ecology; Geology; Chemistry","score_opus":0.005144717062917836,"score_gpt":0.20987152015835148,"score_spread":0.20472680309543365,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2965372205","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995252,0.000029239887,0.00004823542,0.000005808641,0.0000013186823,0.0000025312074,0.00009679712,0.0000037634861,0.00028719343],"genre_scores_gemma":[0.99968815,0.000009023536,0.00007261276,0.0000047833146,8.2280485e-7,0.0000018629363,0.00009172375,9.1530194e-7,0.0001300997],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998697,0.000015572288,0.0000067566057,0.000031953175,0.000031142456,0.000044905475],"domain_scores_gemma":[0.9996486,0.00004620562,0.00007217564,0.00002484819,0.000089242036,0.000118859236],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021372874,0.00013387011,0.00022879161,0.00025730015,0.00063128525,0.00060459727,0.00030227346,0.00016641141,0.0008382302],"category_scores_gemma":[0.00040976898,0.000102508435,0.0001758968,0.00023344836,0.0004251338,0.00022309365,0.00028237575,0.00017981612,0.00007119251],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025103954,0.000065752036,0.97194135,0.000016978709,0.00005216909,0.00023775813,0.00028336793,0.00034905077,0.022718973,0.000036962778,0.00011068014,0.003935911],"study_design_scores_gemma":[6.2242077e-7,0.00001981165,0.9992874,7.6859214e-7,0.0000038855355,0.000024885567,0.00017956525,0.00011651118,0.00029317543,0.0000054245575,0.000066646535,0.0000013853354],"about_ca_topic_score_codex":0.2484948,"about_ca_topic_score_gemma":0.54589975,"teacher_disagreement_score":0.2484948,"about_ca_system_score_codex":0.0014033581,"about_ca_system_score_gemma":0.001038405,"threshold_uncertainty_score":0.49409682},"labels":[],"label_agreement":null},{"id":"W2979833537","doi":"10.1002/eco.2152","title":"Short‐term geomorphological and riparian vegetation responses to a 40‐year flood on a braided, dryland river","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Stillwater (Canada)","funders":"Nature Conservancy; Walton Family Foundation","keywords":"Tamarix; Riparian zone; Vegetation (pathology); Hydrology (agriculture); Floodplain; Shrub; Channel (broadcasting); Erosion; Geology; Flood myth; Deposition (geology); Environmental science; Sediment; Geomorphology; Habitat; Geography; Ecology","score_opus":0.009247453985961374,"score_gpt":0.22630741763355108,"score_spread":0.2170599636475897,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2979833537","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99981946,0.000004955909,0.000007794501,0.000003066691,6.1366e-7,0.0000016328194,0.000081502534,0.000001147333,0.000079894126],"genre_scores_gemma":[0.99946827,0.000009844754,0.000023815865,0.000009581802,0.0000014870769,0.0000053958174,0.00029282187,6.022774e-7,0.00018828108],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999193,0.000016465663,0.000004927259,0.000020810301,0.000013038275,0.00002548742],"domain_scores_gemma":[0.9997303,0.00003434819,0.00008050043,0.000015972708,0.000044085493,0.00009482005],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019048704,0.00014077297,0.0001455526,0.00025523143,0.00030715653,0.0003516529,0.00015886419,0.0002100839,0.00066774583],"category_scores_gemma":[0.0003407979,0.0001027583,0.00012641646,0.00019849036,0.00021631292,0.00017450789,0.00029328893,0.00022865574,0.00012733192],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00032034947,0.00022669867,0.9887954,0.000009494819,0.000046423298,0.00017887735,0.00037150577,0.00033590366,0.006795868,0.00001371319,0.0002445234,0.0026612887],"study_design_scores_gemma":[0.0000015191638,0.0000515154,0.9995041,7.757916e-7,0.0000020480225,0.00001336267,0.00017457826,0.00011455151,0.00006335934,0.000002933805,0.000070236085,0.0000010976784],"about_ca_topic_score_codex":0.015097898,"about_ca_topic_score_gemma":0.055357732,"teacher_disagreement_score":0.015097898,"about_ca_system_score_codex":0.00042809334,"about_ca_system_score_gemma":0.00017205779,"threshold_uncertainty_score":0.030019999},"labels":[],"label_agreement":null},{"id":"W2979924676","doi":"10.1002/eco.2162","title":"Controls on soil carbon dioxide and methane fluxes from a peat swamp vary by hydrogeomorphic setting","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":20,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University Medical Centre; McMaster University; Environment and Climate Change Canada; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Swamp; Peat; Environmental science; Water table; Wetland; Hydrology (agriculture); Carbon dioxide; Carbon cycle; Ecosystem; Soil carbon; Methane; Soil water; Ecology; Soil science; Groundwater; Geology","score_opus":0.0035132920681598804,"score_gpt":0.1857881247624797,"score_spread":0.18227483269431982,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2979924676","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997496,0.000009779691,0.000028780043,0.000002344582,2.6521482e-7,0.0000038795188,0.000054069373,0.0000017466077,0.00014955523],"genre_scores_gemma":[0.99950457,0.000014280821,0.00012428267,0.0000054255397,3.4701884e-7,0.000006565348,0.0001048793,0.000002438319,0.00023723957],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998584,0.000013144109,0.0000074411464,0.000047837257,0.000028277918,0.0000450143],"domain_scores_gemma":[0.9996656,0.000035587105,0.00006908069,0.000019249868,0.00009454051,0.000115930925],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011767208,0.0001857705,0.0003394006,0.00033802324,0.000824719,0.0005940531,0.00036141308,0.00017713032,0.0006535798],"category_scores_gemma":[0.00030732524,0.00021701345,0.00018482827,0.00029077008,0.00074112654,0.00018881979,0.00045291384,0.00016297569,0.00008317364],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00061670155,0.0001249732,0.6588466,0.00006636302,0.000084354266,0.00055119314,0.0015964786,0.000702921,0.33145967,0.000085403895,0.00017018591,0.0056950618],"study_design_scores_gemma":[0.0000019432814,0.00003488251,0.9983115,0.0000017052116,0.0000051163497,0.00003182234,0.00033171914,0.00020815487,0.0009099833,0.000007326904,0.00015266729,0.0000031662037],"about_ca_topic_score_codex":0.3257194,"about_ca_topic_score_gemma":0.70770115,"teacher_disagreement_score":0.3257194,"about_ca_system_score_codex":0.0026964918,"about_ca_system_score_gemma":0.0011464974,"threshold_uncertainty_score":0.64764696},"labels":[],"label_agreement":null},{"id":"W2988170471","doi":"10.1002/eco.2168","title":"Threshold peat burn severity breaks evaporation‐limiting feedback","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":24,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McMaster University","funders":"","keywords":"Peat; Environmental science; Boreal; Moss; Sphagnum; Testate amoebae; Evaporation; Limiting; Black spruce; Atmospheric sciences; Hydrology (agriculture); Ecology; Taiga; Geology; Biology; Meteorology; Geography","score_opus":0.007734492490363781,"score_gpt":0.2126492709490527,"score_spread":0.2049147784586889,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2988170471","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9993494,0.00004622136,0.00024416842,0.000010759786,0.0000027164217,0.0000031597683,0.00003655504,0.00001722294,0.0002898187],"genre_scores_gemma":[0.99974984,0.000009444857,0.00009929775,0.000011736628,0.0000014853781,0.0000017932053,0.00002864601,0.000002930555,0.0000949083],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9998399,0.000019512714,0.000011257372,0.000043126103,0.000038635873,0.00004764124],"domain_scores_gemma":[0.999597,0.00006985302,0.00012795247,0.000036829617,0.00005993044,0.00010836467],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017780057,0.00018802944,0.00036573867,0.00020790352,0.00027861926,0.0004780238,0.00015290125,0.00018159757,0.0013459193],"category_scores_gemma":[0.0003769975,0.00016658114,0.0001891389,0.00008644572,0.00029514616,0.00028646982,0.0004397465,0.00040713197,0.00010088663],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00063223916,0.0001457307,0.17413473,0.0000761956,0.00006248957,0.00016844194,0.00016434802,0.0014866841,0.81415313,0.00013974664,0.00015395899,0.008682344],"study_design_scores_gemma":[0.000005050214,0.00020544673,0.9734085,0.0000066335397,0.000011159473,0.00010151523,0.00022813171,0.0022747682,0.023299167,0.00012802974,0.00032322816,0.000008272621],"about_ca_topic_score_codex":0.002834831,"about_ca_topic_score_gemma":0.0062545966,"teacher_disagreement_score":0.002834831,"about_ca_system_score_codex":0.00044046307,"about_ca_system_score_gemma":0.00018311499,"threshold_uncertainty_score":0.005636692},"labels":[],"label_agreement":null},{"id":"W2990675860","doi":"10.1002/eco.2176","title":"Analysis of air/river maximum daily temperature characteristics using the peaks over threshold approach","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":22,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université de Moncton; Fisheries and Oceans Canada","funders":"","keywords":"Environmental science; Air temperature; Degree (music); Habitat; Hydrology (agriculture); Fish <Actinopterygii>; Maximum temperature; Duration (music); Atmospheric sciences; Ecology; Biology; Fishery; Geology; Physics","score_opus":0.007578164675622375,"score_gpt":0.20943860670794795,"score_spread":0.2018604420323256,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2990675860","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9850492,0.00007746543,0.01315866,0.0000069906905,0.0000036532228,0.000010460956,0.0005573454,0.0000562534,0.0010799905],"genre_scores_gemma":[0.99786747,0.000017575045,0.0016347934,0.0000012801497,0.0000026399412,0.000007939271,0.00034835283,0.000004543436,0.00011548228],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99982375,0.000040187875,0.00001725519,0.00004643709,0.000053146836,0.000019194687],"domain_scores_gemma":[0.9994098,0.00023879777,0.00016919368,0.000042633055,0.00009367227,0.00004590885],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042596174,0.00015871384,0.00019082063,0.001516857,0.000117619806,0.0003231243,0.00016157306,0.00011413761,0.0008384898],"category_scores_gemma":[0.000875147,0.00007602653,0.00024984396,0.0010108863,0.00010063,0.0002848917,0.00021855628,0.00011975607,0.00013792083],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00019450978,0.000042732325,0.91429955,0.00009677503,0.00013375156,0.00022227573,0.0002357547,0.014201573,0.021973314,0.0004149546,0.00031294257,0.04787186],"study_design_scores_gemma":[0.0000026796,0.0001219921,0.9392926,0.000005549735,0.000030898223,0.00021721098,0.00022355314,0.056582212,0.002768566,0.0002275594,0.00051482895,0.000012333908],"about_ca_topic_score_codex":0.0021045653,"about_ca_topic_score_gemma":0.002468226,"teacher_disagreement_score":0.0021045653,"about_ca_system_score_codex":0.00013618416,"about_ca_system_score_gemma":0.00012278448,"threshold_uncertainty_score":0.0041846633},"labels":[],"label_agreement":null},{"id":"W2992815617","doi":"10.1002/eco.2177","title":"Depth distribution of soil water sourced by plants at the global scale: A new direct inference approach","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":115,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Sveriges Lantbruksuniversitet; Fondazione Cassa di Risparmio di Padova e Rovigo","keywords":"Xylem; Soil water; Temperate climate; Environmental science; Arid; Water content; Hydrology (agriculture); Soil science; Geology; Ecology; Botany; Biology","score_opus":0.004163266355392737,"score_gpt":0.1863507865702461,"score_spread":0.18218752021485335,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2992815617","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.3304375,0.0062759947,0.6406694,0.00039211183,0.00010698876,0.00015060806,0.015746083,0.0018590786,0.004362259],"genre_scores_gemma":[0.842179,0.0010624813,0.14396997,0.0002255015,0.00018498776,0.00020241641,0.0109755285,0.00035076163,0.0008493578],"study_design_codex":"observational","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9983358,0.00048035776,0.00010645293,0.00081019645,0.00020400841,0.00006328402],"domain_scores_gemma":[0.99335724,0.004399327,0.00079148065,0.00087183266,0.0004829258,0.00009721114],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0037885015,0.0008980266,0.0008967586,0.005147214,0.00040293517,0.0014527639,0.0010794372,0.00067661266,0.0014647014],"category_scores_gemma":[0.011747147,0.00053434155,0.0018069579,0.004218171,0.0005503527,0.0013692896,0.001471432,0.00065931637,0.00037192027],"study_design_candidate":"simulation_or_modeling","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0008903818,0.00019082389,0.47783482,0.0040627923,0.01563119,0.000861888,0.0010461619,0.109550476,0.07472469,0.009198213,0.0056459187,0.3003626],"study_design_scores_gemma":[0.000307326,0.0003014075,0.405491,0.00024124792,0.0050350684,0.000675738,0.0004524762,0.4993835,0.01979139,0.04174185,0.026321003,0.0002579093],"about_ca_topic_score_codex":0.007183656,"about_ca_topic_score_gemma":0.00553023,"teacher_disagreement_score":0.007183656,"about_ca_system_score_codex":0.0004447987,"about_ca_system_score_gemma":0.00071279716,"threshold_uncertainty_score":0.020035744},"labels":[],"label_agreement":null},{"id":"W2996318459","doi":"10.1002/eco.2188","title":"Nutrient supply patterns across the Sandhill Fen reclamation watershed and regional reference fens in Alberta, Canada: An ion exchange membrane study","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"","funders":"","keywords":"Sandhill; Peat; Environmental science; Nutrient; Watershed; Wetland; Hydrology (agriculture); Histosol; Ecology; Chemistry; Soil science; Soil water; Habitat; Soil organic matter; Geology; Biology","score_opus":0.011397279480335766,"score_gpt":0.22369377771160814,"score_spread":0.2122964982312724,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2996318459","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99911505,0.000047210284,0.000120120276,0.000017769486,7.7768334e-7,0.000010631297,0.00016359492,0.0000098618875,0.0005149429],"genre_scores_gemma":[0.9979354,0.00007594599,0.00077160174,0.000021313386,9.547105e-7,0.0000123901955,0.0002533796,0.0000035706157,0.00092542736],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99975795,0.000012014421,0.000008425112,0.00006154855,0.00009516647,0.0000647544],"domain_scores_gemma":[0.9996835,0.000020896727,0.000042593438,0.000009467333,0.0001937471,0.00004987467],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022043772,0.00022923837,0.00028649057,0.0008118764,0.00166939,0.0006843807,0.00072064676,0.0002989122,0.0005765458],"category_scores_gemma":[0.00031976524,0.00016470336,0.00013761368,0.0011611178,0.00063328294,0.00020549224,0.00034146543,0.00018963711,0.00008632355],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00027681404,0.00011974034,0.95160747,0.000063749554,0.00003469141,0.0004906428,0.0030115081,0.0008978287,0.023593491,0.00016927387,0.0004286431,0.019306157],"study_design_scores_gemma":[0.0000046632385,0.000037407353,0.99460196,0.000007271691,0.000009802858,0.00004933713,0.0019750055,0.0010005678,0.0015289494,0.00002069346,0.00075757375,0.00000698845],"about_ca_topic_score_codex":0.9511725,"about_ca_topic_score_gemma":0.98640615,"teacher_disagreement_score":0.04882753,"about_ca_system_score_codex":0.008539065,"about_ca_system_score_gemma":0.0067194495,"threshold_uncertainty_score":0.09823012},"labels":[],"label_agreement":null},{"id":"W2997349315","doi":"10.1002/eco.2189","title":"Ecosystem scale evapotranspiration and CO<sub>2</sub> exchange in burned and unburned peatlands: Implications for the ecohydrological resilience of carbon stocks to wildfire","year":2019,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":21,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Environmental science; Peat; Ecosystem respiration; Primary production; Evapotranspiration; Eddy covariance; Boreal; Hydrology (agriculture); Ecosystem; Carbon cycle; Taiga; Wetland; Atmospheric sciences; Ecology","score_opus":0.008659424864646194,"score_gpt":0.2314965197849414,"score_spread":0.22283709492029521,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2997349315","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99975175,0.000035209832,0.000024565357,0.000005263311,6.564294e-7,8.1030396e-7,0.00007971307,0.0000015164378,0.00010045867],"genre_scores_gemma":[0.99973756,0.000016451371,0.000041362604,0.0000027957983,4.6697085e-7,7.412085e-7,0.00009859524,6.7797896e-7,0.00010146522],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999459,0.0000048310817,0.0000030267188,0.000010265421,0.000013493101,0.000022544944],"domain_scores_gemma":[0.99980634,0.000023549102,0.000048107016,0.000009587521,0.000047588557,0.00006487796],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018219923,0.0001300033,0.0001324436,0.00042009258,0.00030427458,0.0005360152,0.00022154604,0.00013366641,0.000533391],"category_scores_gemma":[0.0002970219,0.000093025206,0.00015039364,0.00037936502,0.0003471144,0.0002534812,0.0001769055,0.0001495893,0.0000530934],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00046308502,0.00006672854,0.9735642,0.000023442715,0.00007576949,0.00014180288,0.0003493431,0.0021780685,0.017834747,0.00012603974,0.00011640595,0.0050604246],"study_design_scores_gemma":[8.467061e-7,0.00000503654,0.999114,8.7188886e-7,0.0000023402888,0.000010039539,0.000108938,0.00047924428,0.0002321543,0.0000140391085,0.00003126939,0.0000011440899],"about_ca_topic_score_codex":0.3839051,"about_ca_topic_score_gemma":0.6143299,"teacher_disagreement_score":0.3839051,"about_ca_system_score_codex":0.0022406091,"about_ca_system_score_gemma":0.000747583,"threshold_uncertainty_score":0.76334107},"labels":[],"label_agreement":null},{"id":"W3006313598","doi":"10.1002/eco.2198","title":"The variability of stemflow generation in a natural beech stand (<i>Fagus orientalis</i> Lipsky) in relation to rainfall and tree traits","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Thompson Rivers University","funders":"Iran National Science Foundation","keywords":"Fagus orientalis; Beech; Basal area; Stemflow; Diameter at breast height; Canopy; Forestry; Environmental science; Mathematics; Animal science; Hydrology (agriculture); Ecology; Biology; Geography; Throughfall; Geology","score_opus":0.006867628559857032,"score_gpt":0.190210902233614,"score_spread":0.18334327367375697,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3006313598","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998079,0.000014550203,0.000035657402,0.0000017690681,6.192248e-7,0.0000010364676,0.00006810253,0.000002371437,0.000067971385],"genre_scores_gemma":[0.99983203,0.0000048019574,0.000029295901,0.0000016764243,6.7801005e-7,0.0000012586769,0.00009381092,6.5968163e-7,0.000035810528],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999131,0.00001599746,0.0000068287404,0.000037347843,0.0000119566375,0.000014843285],"domain_scores_gemma":[0.9997346,0.000071053066,0.000094377756,0.000021137901,0.000030265162,0.00004854978],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020163051,0.00014751642,0.0001286613,0.00041320344,0.00012271483,0.00020704439,0.00012313071,0.00014289588,0.0004388809],"category_scores_gemma":[0.00027644058,0.0000782068,0.00012630886,0.00027617687,0.00016546618,0.00010857071,0.00010373673,0.00011388367,0.000092570896],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0001758506,0.000041102623,0.97678953,0.000008831084,0.000053410593,0.00015588134,0.00015025628,0.00032892622,0.019143,0.000024334946,0.000069298105,0.0030596554],"study_design_scores_gemma":[8.4131165e-7,0.000018526553,0.9995467,3.219673e-7,0.000003266565,0.000024562145,0.00003047462,0.00019269428,0.00015448846,0.0000030075275,0.000023969218,0.0000011560371],"about_ca_topic_score_codex":0.0057042115,"about_ca_topic_score_gemma":0.010453459,"teacher_disagreement_score":0.0057042115,"about_ca_system_score_codex":0.00025555966,"about_ca_system_score_gemma":0.00007094454,"threshold_uncertainty_score":0.011342049},"labels":[],"label_agreement":null},{"id":"W3015413887","doi":"10.1002/eco.2208","title":"Advancing ecohydrology in the 21st century: A convergence of opportunities","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":75,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan; Thompson Rivers University","funders":"Unidel Foundation; University of Delaware","keywords":"Ecohydrology; Computer science; Resource (disambiguation); Interception; Environmental science; Convergence (economics); Ecology; Ecosystem","score_opus":0.022172502291720894,"score_gpt":0.22352537873936346,"score_spread":0.20135287644764255,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3015413887","genre_codex":"review","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.027606878,0.5295787,0.038862742,0.34984565,0.0038463252,0.00006200595,0.00021002404,0.00018869374,0.049799006],"genre_scores_gemma":[0.3497506,0.5584876,0.042126156,0.028428784,0.0119010005,0.00017685434,0.00014337462,0.00016753946,0.008818039],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.995723,0.0016279954,0.00024504418,0.00040796684,0.0015085646,0.0004875247],"domain_scores_gemma":[0.98987913,0.005638996,0.00055432436,0.00061486725,0.001672895,0.0016397515],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.016800817,0.00069381564,0.0010619203,0.0033748255,0.001637804,0.010835306,0.0013426368,0.0050492506,0.005530471],"category_scores_gemma":[0.008834819,0.0004668218,0.00048522613,0.0029874868,0.014295225,0.017014714,0.010175294,0.006399736,0.00068328256],"study_design_candidate":"theoretical_or_conceptual","study_design_consensus":"theoretical_or_conceptual","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010563997,0.00015213838,0.0024921254,0.001760287,0.000060489354,0.0003170573,0.004188069,0.0031431585,0.0018084111,0.7085127,0.024564061,0.25289586],"study_design_scores_gemma":[0.000013271269,0.00008291531,0.002556973,0.0012147797,0.000014156285,0.00018081548,0.0054194704,0.001576001,0.00072374777,0.5402447,0.44790334,0.00006985419],"about_ca_topic_score_codex":0.0016280675,"about_ca_topic_score_gemma":0.002725138,"teacher_disagreement_score":0.016800817,"about_ca_system_score_codex":0.005269691,"about_ca_system_score_gemma":0.008105434,"threshold_uncertainty_score":0.08885229},"labels":[],"label_agreement":null},{"id":"W3015883924","doi":"10.1002/eco.2210","title":"Ecohydrological change following rewetting of a deep‐drained northern raised bog","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université Laval","funders":"","keywords":"Sphagnum; Bog; Ditch; Peat; Environmental science; Hydrology (agriculture); Water table; Biogeochemical cycle; Ecosystem; Moss; Vegetation (pathology); Ecology; Geology; Groundwater; Biology","score_opus":0.020911622444165154,"score_gpt":0.2243741293296432,"score_spread":0.20346250688547807,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3015883924","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99979407,0.000009391974,0.000023555283,0.000003400646,0.0000014500099,0.000002003343,0.000039178412,0.0000041361063,0.0001228723],"genre_scores_gemma":[0.9996556,0.000007992352,0.00004996454,0.000004219163,9.827944e-7,0.000002735105,0.000082212544,0.0000010868731,0.0001951391],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99995434,0.000005641183,0.0000028672957,0.000010378336,0.000009757841,0.000016951115],"domain_scores_gemma":[0.9998355,0.000017883951,0.000041070274,0.000008859379,0.00003644438,0.00006015124],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00011339591,0.0001229009,0.00021322315,0.0002965497,0.00027205682,0.00026561014,0.00016643395,0.00021402036,0.0004036941],"category_scores_gemma":[0.00017645668,0.000070521884,0.00016085105,0.00015294019,0.00021918045,0.00013045805,0.00020244787,0.00022639788,0.00008363765],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0011232756,0.00081181613,0.60886776,0.00008480243,0.00008570547,0.0028528972,0.0021391332,0.001754719,0.36829463,0.00008231884,0.000358154,0.013544781],"study_design_scores_gemma":[0.0000015853714,0.00009426164,0.99648786,0.0000016086337,0.0000052909004,0.00007735574,0.0002061117,0.0005363453,0.002358532,0.000009320003,0.00021798049,0.000003816159],"about_ca_topic_score_codex":0.02191334,"about_ca_topic_score_gemma":0.03937758,"teacher_disagreement_score":0.02191334,"about_ca_system_score_codex":0.00056124653,"about_ca_system_score_gemma":0.00020185538,"threshold_uncertainty_score":0.04357159},"labels":[],"label_agreement":null},{"id":"W3016033921","doi":"10.1002/eco.2209","title":"Plant community type is an indicator of the seasonal moisture deficit in a disturbed raised bog","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; Campbell Scientific (Canada); University of Saskatchewan; Environment and Climate Change Canada","funders":"","keywords":"Evapotranspiration; Environmental science; Hydrology (agriculture); Water table; Bog; Vegetation (pathology); Water balance; Moisture; Water content; Growing season; Precipitation; Peat; Plant community; Sphagnum; Atmospheric sciences; Ecology; Species richness; Geography; Geology; Meteorology; Groundwater; Biology","score_opus":0.017324742115964197,"score_gpt":0.22292517425632838,"score_spread":0.2056004321403642,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3016033921","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99939,0.000022464461,0.000111036155,0.0000026958935,0.0000010961054,0.0000035631465,0.00017887843,0.000009232294,0.00028106684],"genre_scores_gemma":[0.9996754,0.000007836239,0.00009522089,0.0000016057013,9.584761e-7,0.0000026097005,0.00013007,0.0000010988009,0.00008531404],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998653,0.00003089758,0.000015156059,0.000025104562,0.00003099405,0.0000325309],"domain_scores_gemma":[0.9988738,0.0001957963,0.00052640476,0.000048160742,0.00010316786,0.00025270018],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027699114,0.00015044613,0.00015591663,0.0010001451,0.00017326488,0.00034897568,0.00015362259,0.00014994589,0.0017618656],"category_scores_gemma":[0.0008235835,0.00009151215,0.00015084504,0.00053914345,0.00017484049,0.00014872129,0.00028871652,0.00014784974,0.00022146241],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000102980775,0.000035580484,0.9928352,0.000012925709,0.000026762444,0.000052334097,0.00007219895,0.00026091543,0.004713711,0.00001586775,0.000052513282,0.0018189431],"study_design_scores_gemma":[7.153228e-7,0.00002479546,0.99938214,0.000001439313,0.0000038983612,0.000043709424,0.000057958336,0.000336705,0.00010462431,0.0000071739937,0.000035870205,9.4859274e-7],"about_ca_topic_score_codex":0.004611787,"about_ca_topic_score_gemma":0.016826611,"teacher_disagreement_score":0.004611787,"about_ca_system_score_codex":0.00021432075,"about_ca_system_score_gemma":0.000099004305,"threshold_uncertainty_score":0.009169877},"labels":[],"label_agreement":null},{"id":"W3020452040","doi":"10.1002/eco.2212","title":"Terrestrial laser scanning‐derived canopy interception index for predicting rainfall interception","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Okanagan University College; University of British Columbia, Okanagan Campus; Kelowna General Hospital; University of British Columbia","funders":"National Natural Science Foundation of China","keywords":"Interception; Leaf area index; Canopy; Pinus koraiensis; Environmental science; Temperate rainforest; Canopy interception; Throughfall; Larch; Forestry; Temperate forest; Forest ecology; Atmospheric sciences; Agroforestry; Ecosystem; Ecology; Geography; Biology; Geology","score_opus":0.013319871846878403,"score_gpt":0.2218912640507541,"score_spread":0.2085713922038757,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3020452040","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99276227,0.0001987175,0.005770578,0.000010945202,0.000005313581,0.00001890366,0.0005014215,0.00010274171,0.0006291103],"genre_scores_gemma":[0.9959245,0.0000655433,0.0030724937,0.000007049157,0.0000038524254,0.000017113753,0.0007164793,0.0000055930227,0.00018747436],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99983466,0.000030417103,0.000016494365,0.00005294703,0.000045223125,0.00002029308],"domain_scores_gemma":[0.9996284,0.00012274455,0.0000837374,0.00002313505,0.00011084055,0.000031082873],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006256865,0.0004919931,0.00028131678,0.0010379417,0.00012081243,0.00048553938,0.00020160302,0.0002621541,0.00048956164],"category_scores_gemma":[0.00070485694,0.0001259137,0.00034848912,0.00067791005,0.000086233464,0.00032910623,0.00016958677,0.0002423391,0.00021575864],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012397682,0.00009126913,0.9320482,0.00006744103,0.00013545089,0.00005911973,0.000072512965,0.016485808,0.0161502,0.000060959585,0.0004384465,0.034266554],"study_design_scores_gemma":[0.000010719518,0.00015315916,0.8298391,0.000015627626,0.00007233919,0.00009829802,0.00012508691,0.16450232,0.0047049196,0.00006699418,0.00038400394,0.000027459715],"about_ca_topic_score_codex":0.007365292,"about_ca_topic_score_gemma":0.009572432,"teacher_disagreement_score":0.007365292,"about_ca_system_score_codex":0.00024432875,"about_ca_system_score_gemma":0.00023776923,"threshold_uncertainty_score":0.014644802},"labels":[],"label_agreement":null},{"id":"W3021130245","doi":"10.1002/eco.2217","title":"Considering multiple anthropogenic threats in the context of natural variability: Ecological processes in a regulated riverine ecosystem","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge; University of Calgary","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Innovates","keywords":"Environmental science; Riparian zone; Biota; Ecology; Abiotic component; Ecosystem; Context (archaeology); Tributary; Habitat; Geography; Biology","score_opus":0.016464185645225702,"score_gpt":0.2275894372287304,"score_spread":0.2111252515835047,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3021130245","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9988569,0.000027755825,0.0004179761,0.000101802325,0.0000012733424,0.0000048138554,0.000036752084,0.000005301183,0.000547355],"genre_scores_gemma":[0.9997645,0.000009744235,0.00012861281,0.000011483278,0.0000013019439,0.0000026714206,0.000011479797,0.0000012251785,0.00006903286],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998099,0.00006716727,0.000008150793,0.00004549227,0.000023654393,0.00004568818],"domain_scores_gemma":[0.9994442,0.00013450194,0.0001548935,0.000029407454,0.000101527,0.00013549508],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00063109695,0.000116119256,0.00025577782,0.0004108078,0.0007107392,0.0017680849,0.00047124265,0.00041875456,0.0007203539],"category_scores_gemma":[0.0010164377,0.000112491674,0.0003047539,0.00045419292,0.001006066,0.0006442466,0.00088082784,0.00036961448,0.000047526937],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00014345488,0.0002047498,0.94253165,0.00007070769,0.00022107674,0.0005594151,0.0021580963,0.022288486,0.019110104,0.0040995874,0.00046559592,0.008147111],"study_design_scores_gemma":[0.000005433469,0.00009947226,0.9573146,0.000009021014,0.000030890744,0.00008311726,0.0030141396,0.036039963,0.0002876322,0.002529076,0.0005669329,0.000019648165],"about_ca_topic_score_codex":0.03360373,"about_ca_topic_score_gemma":0.052536022,"teacher_disagreement_score":0.03360373,"about_ca_system_score_codex":0.0014664228,"about_ca_system_score_gemma":0.00096768414,"threshold_uncertainty_score":0.06681627},"labels":[],"label_agreement":null},{"id":"W3037664964","doi":"10.1002/eco.2233","title":"Linking fish assemblages to hydro‐morphological units in a large regulated river","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Environment and Climate Change Canada; University of New Brunswick","funders":"","keywords":"Riffle; Habitat; Hydropower; Environmental science; Ecology; Fauna; Abiotic component; Fish migration; Generalist and specialist species; Fish habitat; Hydrology (agriculture); Fishery; Biology; Geology","score_opus":0.017516023122220812,"score_gpt":0.22313881205884373,"score_spread":0.20562278893662292,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3037664964","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99977845,0.0000039486335,0.00007504793,0.0000036070446,1.317369e-7,0.000003648693,0.00003835966,0.0000013266019,0.000095512754],"genre_scores_gemma":[0.9996362,0.000006343692,0.00018829046,0.0000032329324,2.708187e-7,0.000008642029,0.000064173706,8.221503e-7,0.0000920323],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998671,0.000034969726,0.000009887285,0.000041980522,0.000023219538,0.000022758231],"domain_scores_gemma":[0.999605,0.00008134902,0.0001454723,0.000028647026,0.000082079205,0.0000574143],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021661777,0.000104052466,0.00014207185,0.0007953262,0.00027297606,0.00034120397,0.00026289996,0.00012770438,0.0007263958],"category_scores_gemma":[0.0006030026,0.0001277643,0.00014328105,0.00056743494,0.0004545035,0.00015483657,0.0004501409,0.00012459204,0.00007160477],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000050489147,0.000017682114,0.987015,0.0000130773615,0.000026678603,0.000077024946,0.00041304776,0.0006630869,0.009079081,0.000049143222,0.000043743916,0.0025519363],"study_design_scores_gemma":[0.0000012391945,0.00001538428,0.9988834,0.0000019001335,0.0000032367918,0.000009446261,0.00022201215,0.000676497,0.00012277502,0.000014650483,0.000047634585,0.0000017903311],"about_ca_topic_score_codex":0.0662711,"about_ca_topic_score_gemma":0.21243054,"teacher_disagreement_score":0.0662711,"about_ca_system_score_codex":0.0010383481,"about_ca_system_score_gemma":0.00043218877,"threshold_uncertainty_score":0.13177073},"labels":[],"label_agreement":null},{"id":"W3047580030","doi":"10.1002/eco.2243","title":"Hydrological and productive impacts of recent land‐use and land‐cover changes in the semiarid Chaco: Understanding novel water excess in water scarce farmlands","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":18,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"","funders":"Agencia Nacional de Promoción Científica y Tecnológica; Consejo Nacional de Investigaciones Científicas y Técnicas; International Development Research Centre","keywords":"Evapotranspiration; Groundwater recharge; Environmental science; Hydrology (agriculture); Drainage; Waterlogging (archaeology); Context (archaeology); Deforestation (computer science); Wetland; Groundwater; Cropping; Water resource management; Land cover; Land use; Water use; Agriculture; Geography; Agronomy; Ecology; Geology; Aquifer","score_opus":0.04987218792795849,"score_gpt":0.23805040825580337,"score_spread":0.18817822032784487,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3047580030","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99861073,0.000212391,0.00012995179,0.00009735344,0.0000033129427,0.000004416648,0.0005137843,0.0000069237626,0.00042102017],"genre_scores_gemma":[0.9991536,0.00019458686,0.000096351825,0.00002844509,0.000007880851,0.0000052478154,0.00045565062,0.000003148895,0.00005510266],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999149,0.000017291308,0.000006919205,0.000024766481,0.000010667862,0.000025554751],"domain_scores_gemma":[0.99976593,0.000040592757,0.00007740133,0.00001527047,0.000048275757,0.000052636242],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003078323,0.00021943786,0.000239319,0.0009340708,0.00027900416,0.00078456575,0.0002945109,0.00032832185,0.0011510574],"category_scores_gemma":[0.00044808723,0.0001110449,0.0002581666,0.0013176379,0.00045630353,0.0006021733,0.00048843294,0.00024446996,0.000120449615],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007617776,0.00010210154,0.98632437,0.00008914318,0.00009780999,0.00022401958,0.0006227679,0.0018569016,0.0034823415,0.0002686533,0.00056474813,0.0062909205],"study_design_scores_gemma":[0.0000021166054,0.000009419006,0.9957403,0.000011397304,0.0000122686615,0.000025686866,0.0007312544,0.002963879,0.00008876623,0.00007600417,0.0003346707,0.0000043953005],"about_ca_topic_score_codex":0.053287566,"about_ca_topic_score_gemma":0.06880141,"teacher_disagreement_score":0.053287566,"about_ca_system_score_codex":0.00075430505,"about_ca_system_score_gemma":0.0003311138,"threshold_uncertainty_score":0.105954766},"labels":[],"label_agreement":null},{"id":"W3081309556","doi":"10.1002/eco.2246","title":"Effects of diatoms on erosion and accretion processes in saltmarsh inferred from field observations of hydrodynamic and sedimentary processes","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Coastal wetland ecosystem dynamics","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Adidas (Canada)","funders":"National Natural Science Foundation of China","keywords":"Sediment; Salt marsh; Erosion; Accretion (finance); Environmental science; Diatom; Sedimentary rock; Oceanography; Sediment transport; Sedimentation; Algal mat; Geology; Hydrology (agriculture); Algae; Ecology; Geomorphology; Biology","score_opus":0.0065246562293435435,"score_gpt":0.19286875976831888,"score_spread":0.18634410353897535,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3081309556","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99989843,0.0000053639214,0.000015954856,0.000001204775,2.2617004e-7,6.889786e-7,0.0000234058,8.75212e-7,0.00005391161],"genre_scores_gemma":[0.9997787,0.0000092366345,0.000049666338,0.0000023278733,7.3350793e-7,0.0000014509627,0.000072713585,4.5588956e-7,0.00008471605],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999218,0.000009427051,0.0000060266766,0.000025025422,0.000018610923,0.0000190671],"domain_scores_gemma":[0.9998166,0.000029389867,0.000047576883,0.000011713001,0.000041997464,0.000052828404],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001838822,0.00023316566,0.00024404985,0.0006215608,0.00034358795,0.00033362783,0.00017785736,0.0002227965,0.00043713272],"category_scores_gemma":[0.00024583619,0.0002150392,0.00019151912,0.0004356648,0.00027682193,0.00020101317,0.00027570094,0.000116874086,0.00008754657],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017592264,0.000053765038,0.9655169,0.000016774948,0.000030050924,0.000121133664,0.00034373364,0.00037644387,0.030595193,0.000024433817,0.000028208677,0.0027174926],"study_design_scores_gemma":[0.0000028394793,0.00003052704,0.9987218,0.0000010640099,0.0000052266673,0.000013004504,0.000095953284,0.00064731756,0.00044278757,0.000005458071,0.000032139495,0.0000018340294],"about_ca_topic_score_codex":0.031593498,"about_ca_topic_score_gemma":0.05658843,"teacher_disagreement_score":0.031593498,"about_ca_system_score_codex":0.0005365412,"about_ca_system_score_gemma":0.0003280853,"threshold_uncertainty_score":0.06281924},"labels":[],"label_agreement":null},{"id":"W3091584324","doi":"10.1002/eco.2255","title":"Ecohydrological controls on lichen and moss CO<sub>2</sub> exchange in rock barrens turtle nesting habitat","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Geology and Paleoclimatology Research","field":"Earth and Planetary Sciences","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; McMaster University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Moss; Lichen; Environmental science; Ecology; Habitat; Ecological succession; Ecosystem; Growing season; Biology","score_opus":0.02683431008011837,"score_gpt":0.24062716268748413,"score_spread":0.21379285260736575,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3091584324","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99982494,0.00001625359,0.000013779256,0.0000023296577,2.3656168e-7,8.660472e-7,0.00003386509,0.00000176121,0.00010600585],"genre_scores_gemma":[0.9997274,0.00000909177,0.000029073639,0.0000052237733,5.9890425e-7,0.0000018975196,0.00006983555,0.0000016629457,0.00015515518],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99994195,0.000011435718,0.0000039582533,0.000017109107,0.0000098421515,0.000015716872],"domain_scores_gemma":[0.999571,0.00005215672,0.00015324158,0.000014063008,0.000034619934,0.00017486674],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000102454585,0.00012996266,0.0001415993,0.0003922556,0.0001954051,0.00039805198,0.0001182666,0.00014311117,0.0015042459],"category_scores_gemma":[0.00021728696,0.00013050284,0.00008291532,0.00015656813,0.00028416605,0.00015435308,0.0002904426,0.00013491814,0.00014008378],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006911929,0.00016582619,0.70350903,0.000045212342,0.00007511358,0.00023601043,0.00044078805,0.00042204943,0.28979173,0.00008148799,0.00013853882,0.0044030277],"study_design_scores_gemma":[8.343549e-7,0.000028126133,0.9994184,5.6271875e-7,0.0000017759386,0.000014305242,0.000056491204,0.00009063457,0.00035269465,0.0000045204447,0.00003074908,0.0000010237336],"about_ca_topic_score_codex":0.01216311,"about_ca_topic_score_gemma":0.03600182,"teacher_disagreement_score":0.01216311,"about_ca_system_score_codex":0.0003159335,"about_ca_system_score_gemma":0.00011504236,"threshold_uncertainty_score":0.024184585},"labels":[],"label_agreement":null},{"id":"W3095235054","doi":"10.1002/eco.2261","title":"Influence of soil warming and N‐addition on sap flux density and stem radius variation in boreal stands in Quebec, Canada","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Université du Québec à Montréal; Natural Sciences and Engineering Research Council of Canada; Université du Québec en Abitibi-Témiscamingue; Ministère des Ressources naturelles et des Forêts; Ouranos; Université du Québec à Chicoutimi","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Black spruce; Environmental science; Boreal; Productivity; Latitude; Global warming; Flux (metallurgy); Soil water; Climate change; Atmospheric sciences; Taiga; Hydrology (agriculture); Ecology; Forestry; Soil science; Geography; Biology; Chemistry; Geology","score_opus":0.0037765017502634367,"score_gpt":0.16268282333455597,"score_spread":0.15890632158429252,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3095235054","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9967784,0.0003606542,0.00016275147,0.00006165383,0.000007991511,0.000014218773,0.0015082384,0.000017620812,0.0010884869],"genre_scores_gemma":[0.998281,0.0001073278,0.00018938947,0.000035844838,0.0000023883101,0.000008989061,0.00069370656,0.0000044374865,0.00067688315],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997009,0.00002961367,0.000012024052,0.00009802834,0.00007304013,0.00008635622],"domain_scores_gemma":[0.9989354,0.00009346989,0.00012775688,0.00003730556,0.00057713484,0.00022881037],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004052026,0.00034167105,0.0003020335,0.00070438185,0.0014175031,0.0006175905,0.00071439863,0.00021875057,0.0012039292],"category_scores_gemma":[0.00050746696,0.00012960265,0.0002901968,0.0011163577,0.0004748371,0.0002148818,0.00024534282,0.00028579656,0.00011213985],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00022787256,0.00008725785,0.9752178,0.000060632203,0.00013724797,0.00015312068,0.0006167013,0.0009644068,0.009298066,0.000089465226,0.0013404672,0.011806968],"study_design_scores_gemma":[0.0000025803952,0.00000933902,0.99891067,0.0000045956845,0.000007784654,0.000009970436,0.00019780653,0.00032730092,0.00010766048,0.0000040360264,0.00041317145,0.000005097546],"about_ca_topic_score_codex":0.99160755,"about_ca_topic_score_gemma":0.997603,"teacher_disagreement_score":0.0155984815,"about_ca_system_score_codex":0.0155984815,"about_ca_system_score_gemma":0.007793914,"threshold_uncertainty_score":0.11317545},"labels":[],"label_agreement":null},{"id":"W3097603285","doi":"10.1002/eco.2332","title":"Impacts of a regional multiyear insect defoliation event on growing‐season runoff ratios and instantaneous streamflow characteristics","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Streamflow; Environmental science; Surface runoff; Ecohydrology; Temperate climate; Growing season; Watershed; Population; Hydrology (agriculture); Ecosystem; Ecology; Drainage basin; Geography; Biology; Geology","score_opus":0.010292075072903317,"score_gpt":0.21876725751089426,"score_spread":0.20847518243799096,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3097603285","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99955887,0.00002100783,0.000054412736,0.0000070429587,0.0000012097775,0.0000020664183,0.00017791873,0.000006104049,0.00017132272],"genre_scores_gemma":[0.9996383,0.000015904165,0.00007578737,0.0000049745986,0.0000015204636,0.0000019648471,0.00019775232,0.0000012397785,0.000062591265],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99985135,0.000022250963,0.000012473056,0.00004845082,0.000028748078,0.00003665067],"domain_scores_gemma":[0.9995196,0.000051794283,0.00022572771,0.00003495744,0.00007200414,0.00009599824],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002540716,0.00016793226,0.00019007736,0.00036193253,0.00018439384,0.0004394555,0.0001476304,0.00013490925,0.0005706664],"category_scores_gemma":[0.00051856734,0.00007889782,0.00027749815,0.00034966753,0.00017329265,0.00021985105,0.00034320526,0.00020150232,0.000082937935],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000647986,0.00004558786,0.99329126,0.000007848094,0.000056985587,0.00008451936,0.00007921843,0.0008656738,0.0032582756,0.000015824206,0.00008502658,0.0021449921],"study_design_scores_gemma":[5.048133e-7,0.000021439819,0.9992066,8.253297e-7,0.000005724811,0.000014882076,0.000059281243,0.0004808061,0.00015816702,0.0000031315365,0.000047591773,9.857783e-7],"about_ca_topic_score_codex":0.028202044,"about_ca_topic_score_gemma":0.053942684,"teacher_disagreement_score":0.028202044,"about_ca_system_score_codex":0.0005112772,"about_ca_system_score_gemma":0.00028811628,"threshold_uncertainty_score":0.05607581},"labels":[],"label_agreement":null},{"id":"W3114500662","doi":"10.1002/eco.2273","title":"The role of hummocks in re‐establishing black spruce forest following permafrost thaw","year":2020,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Environment and Climate Change Canada; University of Northern British Columbia; Wilfrid Laurier University","funders":"Natural Sciences and Engineering Research Council of Canada; ArcticNet","keywords":"Permafrost; Black spruce; Bog; Peat; Wetland; Environmental science; Sphagnum; Canopy; Geology; Hydrology (agriculture); Geomorphology; Physical geography; Taiga; Ecology; Forestry; Geography","score_opus":0.02271584371322127,"score_gpt":0.2238927962017398,"score_spread":0.20117695248851852,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3114500662","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99973196,0.000020723308,0.000011279034,0.0000061508185,3.4709214e-7,0.000001549298,0.000039342773,0.0000010054082,0.00018754145],"genre_scores_gemma":[0.99973506,0.00001632206,0.000028289616,0.000003742595,5.5168016e-7,0.00000106005,0.00004952606,4.101968e-7,0.00016497026],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993527,0.000008225457,0.0000019010118,0.000011085337,0.000011320569,0.00003215931],"domain_scores_gemma":[0.99953306,0.000045362198,0.00013835356,0.000014711902,0.00008745285,0.00018109457],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017305388,0.000093569506,0.00009832042,0.0004433271,0.00048720115,0.00048506793,0.00021875145,0.00015955901,0.00084804324],"category_scores_gemma":[0.0005244149,0.00006458654,0.00007778865,0.00018822282,0.00023997271,0.00014064927,0.0002415488,0.00013157481,0.00009831779],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000079898804,0.000026865775,0.9924394,0.000005815126,0.000010293486,0.0001230077,0.00026741074,0.00013649125,0.0035413536,0.0000244056,0.000060779108,0.0032842215],"study_design_scores_gemma":[1.9301017e-7,0.0000058859555,0.9996402,0.0000011911264,6.615924e-7,0.000011392412,0.00019250676,0.00006434924,0.00004484485,0.0000042181287,0.000034209177,4.1384266e-7],"about_ca_topic_score_codex":0.16843393,"about_ca_topic_score_gemma":0.5218534,"teacher_disagreement_score":0.16843393,"about_ca_system_score_codex":0.00081754086,"about_ca_system_score_gemma":0.00053068757,"threshold_uncertainty_score":0.33490705},"labels":[],"label_agreement":null},{"id":"W3120392301","doi":"10.1002/eco.2277","title":"Deeper burning in a boreal fen peatland 1‐year post‐wildfire accelerates recovery trajectory of carbon dioxide uptake","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":13,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Mount Royal University; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Peat; Environmental science; Boreal; Ecosystem; Prescribed burn; Taiga; Understory; Carbon cycle; Growing season; Vegetation (pathology); Ecosystem respiration; Primary production; Hydrology (agriculture); Atmospheric sciences; Ecology; Forestry; Geology; Geography","score_opus":0.007469126620121179,"score_gpt":0.20791980615528233,"score_spread":0.20045067953516116,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3120392301","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997589,0.000012252517,0.00002212538,0.000005961466,9.103366e-7,0.0000013375366,0.000045013516,0.000002542598,0.0001509559],"genre_scores_gemma":[0.9994974,0.000009431699,0.00004564934,0.0000041619433,3.2456504e-7,9.4998774e-7,0.00006848597,5.186564e-7,0.00037308308],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99996066,0.000002656203,0.0000012167933,0.00000799197,0.0000055149353,0.000022067483],"domain_scores_gemma":[0.99989164,0.0000070747265,0.000024151703,0.000005886936,0.000023446077,0.0000476793],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009834808,0.00011708336,0.00010544245,0.00011323783,0.00035910137,0.00034840126,0.000190855,0.00011001821,0.0011239777],"category_scores_gemma":[0.00013606889,0.00006404272,0.00010112329,0.000106416686,0.00014483462,0.00008466632,0.000112719106,0.00013948238,0.0000809336],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00086291536,0.00028358115,0.9485999,0.00002256388,0.000040259198,0.00042925967,0.00046791873,0.0011802773,0.035953574,0.0000855357,0.00051343103,0.011560801],"study_design_scores_gemma":[0.0000013848437,0.000044342414,0.9986755,0.0000017708975,0.0000027317433,0.000031433676,0.00027172608,0.000383303,0.00045998467,0.000009692725,0.00011677178,0.0000014237597],"about_ca_topic_score_codex":0.32599416,"about_ca_topic_score_gemma":0.6396507,"teacher_disagreement_score":0.32599416,"about_ca_system_score_codex":0.0010469512,"about_ca_system_score_gemma":0.0007959271,"threshold_uncertainty_score":0.64819336},"labels":[],"label_agreement":null},{"id":"W3121908287","doi":"10.1002/eco.2282","title":"Hydrologic classification of Tanzanian rivers to support national water resource policy","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"United States Agency for International Development","keywords":"Drainage basin; Streamflow; Water resources; Hydrology (agriculture); Resource (disambiguation); Structural basin; Environmental science; Tanzania; Environmental resource management; Water resource management; Geography; Ecology; Environmental planning; Computer science; Geology; Cartography","score_opus":0.014975922181249294,"score_gpt":0.24492410069335474,"score_spread":0.22994817851210544,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3121908287","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9926082,0.00005054066,0.0030384322,0.00015797038,0.0000045924567,0.0000604188,0.0016083072,0.00006006169,0.0024115094],"genre_scores_gemma":[0.9933467,0.000023893987,0.0054178974,0.000012974122,0.0000032959567,0.00003083736,0.0009776877,0.0000036986542,0.00018307344],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99980086,0.000086536595,0.000020085075,0.00003070563,0.000026313155,0.000035443965],"domain_scores_gemma":[0.99917054,0.00023135629,0.00025071992,0.00006422645,0.00023021619,0.00005298897],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005925241,0.00010422407,0.00007558853,0.0014301022,0.00026010483,0.0004953671,0.00020445933,0.00010672369,0.00087739096],"category_scores_gemma":[0.0015508978,0.00007721639,0.00011154347,0.0013103642,0.00018786709,0.00023336714,0.0003968507,0.00017887303,0.00014531243],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010918012,0.00005930508,0.8981307,0.00010886653,0.000029363413,0.00020320991,0.0019478751,0.017229436,0.0068119206,0.0025593326,0.004683861,0.06812691],"study_design_scores_gemma":[0.000010081261,0.0000510998,0.9374435,0.000057133195,0.000017521188,0.000052823947,0.0018065162,0.053587835,0.0012116438,0.0010206869,0.004726913,0.0000143725665],"about_ca_topic_score_codex":0.014493946,"about_ca_topic_score_gemma":0.031354785,"teacher_disagreement_score":0.014493946,"about_ca_system_score_codex":0.00062229694,"about_ca_system_score_gemma":0.0006336814,"threshold_uncertainty_score":0.028819144},"labels":[],"label_agreement":null},{"id":"W3156086764","doi":"10.1002/eco.2296","title":"The hydrology of treed wetlands in thawing discontinuous permafrost regions","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":19,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Lethbridge; Wilfrid Laurier University; Government of Northwest Territories; Environment and Climate Change Canada","funders":"Natural Sciences and Engineering Research Council of Canada; ArcticNet","keywords":"Permafrost; Wetland; Peat; Environmental science; Geology; Hydrology (agriculture); Plateau (mathematics); Snow; Active layer; Geomorphology; Ecology; Geotechnical engineering; Layer (electronics)","score_opus":0.022201679797351336,"score_gpt":0.23335172378612018,"score_spread":0.21115004398876885,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3156086764","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998481,0.0000069954535,0.000022200975,0.0000021642402,1.491925e-7,6.129652e-7,0.000026854039,0.0000010621919,0.0000917687],"genre_scores_gemma":[0.99987924,0.0000065571694,0.000034701057,0.0000011177106,4.275852e-7,8.0173686e-7,0.00004351375,3.5407515e-7,0.000033235363],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999974,0.000004644205,0.0000019064195,0.0000061992073,0.0000050247395,0.00000825964],"domain_scores_gemma":[0.9998429,0.000034161432,0.00005521382,0.000006414423,0.00002047243,0.000040848823],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008039216,0.00004636006,0.00006637138,0.0004648981,0.00014702605,0.0002261004,0.0000778276,0.00008706428,0.00053945853],"category_scores_gemma":[0.00020648939,0.00005294617,0.00008330922,0.0003032653,0.00020332845,0.0001367394,0.00016305824,0.000070963615,0.000040172497],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000082875,0.000019082276,0.98580253,0.000010926087,0.000016737802,0.00025865354,0.00034169725,0.00058275135,0.008984646,0.000070392474,0.000043242537,0.0037863385],"study_design_scores_gemma":[6.667577e-7,0.000007719628,0.99942553,7.9212964e-7,9.740779e-7,0.000036695204,0.00008869435,0.0003169622,0.00008247654,0.000009559351,0.00002930394,6.682205e-7],"about_ca_topic_score_codex":0.005846193,"about_ca_topic_score_gemma":0.013260859,"teacher_disagreement_score":0.005846193,"about_ca_system_score_codex":0.00018682673,"about_ca_system_score_gemma":0.00011823469,"threshold_uncertainty_score":0.011624336},"labels":[],"label_agreement":null},{"id":"W3156779366","doi":"10.1002/eco.2295","title":"An ecohydrological typology for thermal refuges in streams and rivers","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":80,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Dalhousie University","funders":"","keywords":"Typology; Conceptualization; Ambiguity; STREAMS; Environmental resource management; Environmental science; Ecology; Computer science; Geography; Biology; Artificial intelligence","score_opus":0.00785881613124638,"score_gpt":0.2349246978931706,"score_spread":0.22706588176192422,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3156779366","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.6440706,0.0049815644,0.18327583,0.0064537153,0.0003525779,0.0006668476,0.0019666303,0.00029139416,0.15794072],"genre_scores_gemma":[0.97400916,0.00053015194,0.022385646,0.00014955534,0.00006096692,0.0002981738,0.00047190388,0.000031532032,0.00206287],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"observational","domain_scores_codex":[0.9984634,0.00074134726,0.0001853607,0.00020961495,0.00025398436,0.00014630887],"domain_scores_gemma":[0.9972228,0.0012057767,0.0005421182,0.0002633274,0.00045854435,0.00030758418],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0019517601,0.00038086504,0.00037591028,0.0066327443,0.0019686336,0.004074713,0.0010221817,0.00093916594,0.005576037],"category_scores_gemma":[0.003535567,0.0001837518,0.0005713508,0.0048505007,0.009803959,0.0055845254,0.0027441734,0.0007990341,0.00029636113],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00004750923,0.000054191103,0.03532728,0.00036182208,0.00003110969,0.0007581234,0.024641844,0.0033181198,0.0012656061,0.90112853,0.0040492886,0.02901673],"study_design_scores_gemma":[0.00003852091,0.00008019907,0.062767446,0.0008670459,0.000033366458,0.0020528298,0.10280861,0.01351248,0.00060981757,0.6991114,0.117989585,0.00012862388],"about_ca_topic_score_codex":0.0033351646,"about_ca_topic_score_gemma":0.0046898373,"teacher_disagreement_score":0.0066327443,"about_ca_system_score_codex":0.002364787,"about_ca_system_score_gemma":0.0013396932,"threshold_uncertainty_score":0.01865375},"labels":[],"label_agreement":null},{"id":"W3167871735","doi":"10.1002/eco.2316","title":"Ecohydrological metrics for vegetation communities in turloughs (ephemeral karstic wetlands)","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Trinity College","funders":"U.S. Environmental Protection Agency","keywords":"Wetland; Hydrology (agriculture); Environmental science; Vegetation (pathology); Flood myth; Karst; Plant community; Habitat; Ephemeral key; Physical geography; Geography; Ecology; Geology; Ecological succession","score_opus":0.02120948830103346,"score_gpt":0.24695499030326756,"score_spread":0.2257455020022341,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3167871735","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.999065,0.00002687239,0.0002755262,0.0000033931594,6.646396e-7,0.00000843324,0.00036884513,0.000007986053,0.00024337211],"genre_scores_gemma":[0.9990415,0.000008740105,0.00044789448,0.0000018072883,7.9114596e-7,0.000009119274,0.00037161497,0.0000017196833,0.000116738964],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997974,0.000031103133,0.000021193408,0.00005627996,0.00004018616,0.00005384713],"domain_scores_gemma":[0.9991147,0.00015865928,0.00031751156,0.000051617808,0.00021291747,0.00014454486],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036735745,0.00012197902,0.00018689907,0.0023912361,0.00018047744,0.0004939222,0.00019693062,0.00012958734,0.0006058695],"category_scores_gemma":[0.0007868726,0.00009863802,0.00023924622,0.00093865785,0.00026299598,0.00036378182,0.0005545346,0.00010861525,0.00011548884],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000077531884,0.000021903517,0.98681784,0.000031823813,0.000048165344,0.000046823505,0.0003344543,0.001095337,0.004397181,0.00005990485,0.0001476472,0.0069214944],"study_design_scores_gemma":[8.805019e-7,0.000017333929,0.9988507,0.0000016444985,0.0000024934602,0.00001925747,0.00016248344,0.000706534,0.0001172534,0.000016122152,0.00010295024,0.0000022359825],"about_ca_topic_score_codex":0.01812555,"about_ca_topic_score_gemma":0.04154283,"teacher_disagreement_score":0.01812555,"about_ca_system_score_codex":0.00063854386,"about_ca_system_score_gemma":0.0002249601,"threshold_uncertainty_score":0.036040127},"labels":[],"label_agreement":null},{"id":"W3168087194","doi":"10.1002/eco.2318","title":"Quantitative modelling of fish habitat in a large regulated river in a changing climate","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Institut National de la Recherche Scientifique; Environment and Climate Change Canada; University of New Brunswick","funders":"","keywords":"Habitat; Hydropower; Environmental science; Climate change; Fish habitat; Streamflow; Fish <Actinopterygii>; Current (fluid); Ecology; Fishery; Geography; Drainage basin; Biology; Geology; Oceanography","score_opus":0.01632936777911103,"score_gpt":0.2315425807565718,"score_spread":0.21521321297746077,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3168087194","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98861796,0.000009550267,0.0095922835,0.000043500193,0.0000020763828,0.000015613112,0.00025987456,0.000046936795,0.0014122211],"genre_scores_gemma":[0.9975304,0.000008466545,0.0018867708,0.0000043912223,8.066628e-7,0.000023140346,0.00009829119,0.0000046967243,0.0004431318],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99990904,0.000039566607,0.000003950479,0.000022984,0.000009275684,0.000015203672],"domain_scores_gemma":[0.9995877,0.00023763545,0.00005836562,0.000030424644,0.000053972577,0.000031888707],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00029632245,0.00019414225,0.00019997056,0.00027010447,0.00026168462,0.0006283207,0.0006112034,0.00047429287,0.0015222208],"category_scores_gemma":[0.0009045579,0.00019823674,0.0004186911,0.00030016244,0.00039831235,0.00037188962,0.0002957915,0.00024475707,0.000095763025],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000021786393,0.000022309148,0.009138237,0.000007348047,0.000013602655,0.000042001386,0.000032543463,0.98847264,0.0010168952,0.00037469712,0.000052271167,0.00080563745],"study_design_scores_gemma":[0.000004739676,0.000024376586,0.006777619,0.000001928467,0.0000044001154,0.000008556391,0.000036019213,0.9927658,0.00010991009,0.0001848095,0.000077343655,0.0000044687295],"about_ca_topic_score_codex":0.04242925,"about_ca_topic_score_gemma":0.03535376,"teacher_disagreement_score":0.04242925,"about_ca_system_score_codex":0.0012573567,"about_ca_system_score_gemma":0.0006657782,"threshold_uncertainty_score":0.08436453},"labels":[],"label_agreement":null},{"id":"W3179549481","doi":"10.1002/eco.2328","title":"A bibliometric analysis of the research on Sponge City: Current situation and future development direction","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Urban Stormwater Management Solutions","field":"Environmental Science","cited_by":94,"is_retracted":false,"has_abstract":true,"route_ca_aff":false,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"","funders":"Fundamental Research Funds for the Central Universities","keywords":"China; Urbanization; Flood myth; Geography; Web of science; Urban planning; Regional science; Environmental planning; Environmental resource management; Political science; Civil engineering; Environmental science; Engineering; Economic growth; Archaeology","score_opus":0.060910546709727315,"score_gpt":0.31830015768587006,"score_spread":0.25738961097614277,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3179549481","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.4940596,0.2643989,0.014987828,0.03962124,0.0017486963,0.00093501137,0.046003558,0.0011061517,0.13713904],"genre_scores_gemma":[0.87178147,0.0992044,0.010064009,0.0007665211,0.00087212597,0.00038444274,0.013589153,0.00007613869,0.0032616826],"study_design_codex":"design_other","study_design_gemma":"not_applicable","domain_scores_codex":[0.98540175,0.0032968267,0.002789347,0.0010727647,0.006903272,0.0005360057],"domain_scores_gemma":[0.9364221,0.028209606,0.012797351,0.0018769975,0.019028703,0.0016651517],"candidate_categories":["bibliometrics"],"consensus_categories":[],"category_scores_codex":[0.011605438,0.00056338875,0.0013104104,0.107711315,0.0014155478,0.009022991,0.00079184683,0.0006776413,0.005214404],"category_scores_gemma":[0.038000736,0.00023079128,0.0013034999,0.22560176,0.0013276228,0.005646405,0.0020743902,0.00051742187,0.00080570846],"study_design_candidate":"not_applicable","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00020837011,0.0001504528,0.40357462,0.026249798,0.000921035,0.0009575048,0.0059502516,0.0012498333,0.0020363291,0.02085126,0.04333512,0.49451533],"study_design_scores_gemma":[0.000035961726,0.00014993544,0.7761574,0.011771611,0.0011740157,0.0014635357,0.021281382,0.004669329,0.0019121519,0.0077154627,0.1735101,0.00015906997],"about_ca_topic_score_codex":0.011042689,"about_ca_topic_score_gemma":0.009648463,"teacher_disagreement_score":0.8922887,"about_ca_system_score_codex":0.005437013,"about_ca_system_score_gemma":0.0097874245,"threshold_uncertainty_score":0.061376154},"labels":[],"label_agreement":null},{"id":"W3192796424","doi":"10.1002/eco.2335","title":"Ecohydrological interactions in a boreal fen–swamp complex, Alberta, Canada","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Swamp; Peat; Wetland; Water table; Bog; Hydrology (agriculture); Environmental science; Vegetation (pathology); Boreal; Groundwater; Hydraulic conductivity; Geology; Ecology; Soil science; Soil water; Biology","score_opus":0.013080040845589318,"score_gpt":0.23325193301370561,"score_spread":0.2201718921681163,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3192796424","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9986725,0.00006178607,0.00006577357,0.000029556893,0.0000010073182,0.000013657555,0.00022969648,0.0000057550624,0.00092043116],"genre_scores_gemma":[0.9981159,0.00007723801,0.0003678101,0.000024091847,9.977207e-7,0.000010023466,0.00034972542,0.000002916355,0.0010515158],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99967027,0.000035897523,0.000013082838,0.00006278535,0.00009213564,0.00012585225],"domain_scores_gemma":[0.9991928,0.000069848604,0.00010261198,0.00002866614,0.0004015449,0.00020468382],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032535795,0.00018446628,0.00022183965,0.0015653558,0.0022201396,0.0009609798,0.0007412258,0.00021661406,0.0009777341],"category_scores_gemma":[0.0008261607,0.00019076823,0.0001277576,0.0019493381,0.0009002832,0.00025894758,0.0006348505,0.00020385045,0.00009959754],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000087026885,0.000067174224,0.97769177,0.00002788228,0.000027795308,0.00063441717,0.004562258,0.000406692,0.0031242196,0.0002425836,0.0006279542,0.0125002405],"study_design_scores_gemma":[0.0000013640735,0.00001172858,0.9946465,0.0000058794626,0.000004120414,0.00007167121,0.003774618,0.00035403686,0.000111697955,0.000024691053,0.0009891833,0.0000044718868],"about_ca_topic_score_codex":0.9853241,"about_ca_topic_score_gemma":0.9966678,"teacher_disagreement_score":0.014675915,"about_ca_system_score_codex":0.014020432,"about_ca_system_score_gemma":0.0094421655,"threshold_uncertainty_score":0.10172582},"labels":[],"label_agreement":null},{"id":"W3195082778","doi":"10.1002/eco.2340","title":"Tree‐ring stable isotopes and radiocarbon reveal pre‐ and post‐eruption effects of volcanic processes on trees on Mt. Etna (Sicily, Italy)","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Western Forest Products; University of British Columbia","funders":"Regione Siciliana; Università degli Studi di Palermo; Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung; National Science Foundation","keywords":"Volcano; Tephra; Geology; Magma; Vulcanian eruption; Geochemistry; Basalt; Vegetation (pathology); Earth science","score_opus":0.007043224145153831,"score_gpt":0.21121478855575707,"score_spread":0.20417156441060325,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3195082778","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99913764,0.00009082357,0.000040157767,0.0000051175616,0.0000019951185,0.0000029569294,0.0002563374,0.000008476864,0.00045638223],"genre_scores_gemma":[0.9991254,0.000045702775,0.00012384396,0.000006282445,0.0000054458037,0.0000040807463,0.0004278721,0.000006344418,0.00025504554],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99992704,0.0000068772842,0.0000024827782,0.00003169702,0.000012226947,0.000019642914],"domain_scores_gemma":[0.9997776,0.000032356496,0.00008678599,0.000016116564,0.000044077908,0.00004305344],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001515457,0.00025232238,0.00019857954,0.0010079469,0.0003284571,0.00038667576,0.00038896498,0.00035142267,0.0010285294],"category_scores_gemma":[0.00017430085,0.00018993135,0.00017410485,0.00070189114,0.00028277826,0.00017942187,0.00021937386,0.00022541097,0.00033558838],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00042490222,0.00008402372,0.88770115,0.00006339879,0.000080618855,0.00030375502,0.0005234278,0.0005567958,0.09836924,0.000040746152,0.00032774458,0.01152419],"study_design_scores_gemma":[9.304725e-7,0.000012170878,0.9995995,7.127312e-7,0.000002872882,0.0000127362755,0.000016776377,0.000089716115,0.00018780347,0.0000013941044,0.00007469737,6.926485e-7],"about_ca_topic_score_codex":0.015998881,"about_ca_topic_score_gemma":0.035488885,"teacher_disagreement_score":0.015998881,"about_ca_system_score_codex":0.00042333678,"about_ca_system_score_gemma":0.00012472387,"threshold_uncertainty_score":0.031811476},"labels":[],"label_agreement":null},{"id":"W3198278614","doi":"10.1002/eco.2347","title":"Reexamining forest disturbance thresholds for managing cumulative hydrological impacts","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":16,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Okanagan University College; University of British Columbia, Okanagan Campus; Kelowna General Hospital; University of British Columbia","funders":"Natural Sciences and Engineering Research Council of Canada; National Natural Science Foundation of China","keywords":"Disturbance (geology); Watershed; Environmental science; Forest management; Cumulative effects; Scale (ratio); Hydrology (agriculture); Forest restoration; Forest ecology; Ecology; Geography; Computer science; Ecosystem; Agroforestry; Geology; Cartography","score_opus":0.020683386921775807,"score_gpt":0.25648819967205905,"score_spread":0.23580481275028325,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3198278614","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8654302,0.0014343013,0.12672444,0.00038901385,0.00004811178,0.00056382985,0.0007038638,0.0005515251,0.0041546323],"genre_scores_gemma":[0.95835483,0.00020462472,0.04086516,0.000062670035,0.000007367674,0.000119316144,0.00018294346,0.000027893275,0.0001752909],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9980385,0.0007027526,0.00018873013,0.00031882507,0.00060348853,0.00014778237],"domain_scores_gemma":[0.99219877,0.0032994857,0.0016231479,0.0007074014,0.001911478,0.0002596504],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.006096935,0.00044383173,0.0006829108,0.0022064082,0.0005684483,0.0016672323,0.0008883965,0.00045379737,0.0006457699],"category_scores_gemma":[0.01384283,0.00018886659,0.00030467892,0.001566597,0.0010030603,0.001433126,0.0009259233,0.00069983985,0.00010193129],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0007362288,0.0005631406,0.47199965,0.0009440757,0.00029206966,0.00026438033,0.0011961682,0.045783997,0.08415045,0.0051707327,0.0020460857,0.38685292],"study_design_scores_gemma":[0.00004661611,0.0008685886,0.8084295,0.00020748179,0.00016355689,0.00015832971,0.0016780489,0.12185773,0.052431967,0.0077486117,0.0062741493,0.000135516],"about_ca_topic_score_codex":0.031041311,"about_ca_topic_score_gemma":0.051719494,"teacher_disagreement_score":0.031041311,"about_ca_system_score_codex":0.002000185,"about_ca_system_score_gemma":0.0027122253,"threshold_uncertainty_score":0.061721265},"labels":[],"label_agreement":null},{"id":"W3206913945","doi":"10.1002/eco.2364","title":"Ditch the low flow: Agricultural impacts on flow regimes and consequences for aquatic ecosystem functions","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":27,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Agriculture and Agri-Food Canada; Environment and Climate Change Canada; University of Victoria; University of New Brunswick","funders":"Environment and Climate Change Canada","keywords":"Environmental science; Ecosystem services; Ecosystem; Riparian zone; Threatened species; Ditch; Agriculture; Biodiversity; Climate change; Habitat; Water resource management; Environmental resource management; Ecology","score_opus":0.009404159957240255,"score_gpt":0.21023779577158655,"score_spread":0.2008336358143463,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3206913945","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5743212,0.38163444,0.0013364368,0.00342399,0.00018968174,0.000041298998,0.0013516152,0.00006169856,0.037639532],"genre_scores_gemma":[0.8673116,0.12906931,0.00043830875,0.00039463345,0.000057025994,0.000009201922,0.00023627716,0.000005330003,0.0024782293],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.9998888,0.000023626812,0.0000072469825,0.000012260024,0.000041867886,0.000026211925],"domain_scores_gemma":[0.9996809,0.00011235447,0.00006876388,0.000005522469,0.000101689926,0.000030815874],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027379554,0.00013148827,0.00016969287,0.00053486694,0.00026084814,0.0009438198,0.00017420914,0.00016199175,0.002135197],"category_scores_gemma":[0.00046931056,0.000033645272,0.00016238347,0.0009448009,0.00045848134,0.00026349194,0.00024782665,0.00022606138,0.00008003464],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00040715796,0.00019678414,0.20080248,0.013332789,0.0006447285,0.0010193432,0.0023844482,0.008719084,0.017335935,0.012895092,0.017221205,0.725041],"study_design_scores_gemma":[0.000020147207,0.0003278419,0.8075633,0.003693977,0.0005932138,0.00046584537,0.005182664,0.001584635,0.006022249,0.0059052897,0.16858171,0.000059151247],"about_ca_topic_score_codex":0.0908493,"about_ca_topic_score_gemma":0.192223,"teacher_disagreement_score":0.0908493,"about_ca_system_score_codex":0.0016126774,"about_ca_system_score_gemma":0.0017184444,"threshold_uncertainty_score":0.180641},"labels":[],"label_agreement":null},{"id":"W3208717017","doi":"10.1002/eco.2369","title":"Stemflow infiltration areas into forest soils around American beech (<scp><i>Fagus grandifolia</i></scp> Ehrh.) trees","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":23,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Thompson Rivers University","funders":"Ministerio de Ciencia e Innovación; Deutscher Akademischer Austauschdienst; China Shipbuilding Industry; University of Delaware","keywords":"Stemflow; Beech; Infiltration (HVAC); Basal area; Environmental science; Soil water; Agroforestry; Forestry; Hydrology (agriculture); Soil science; Geology; Geography; Geotechnical engineering","score_opus":0.005111322238944173,"score_gpt":0.2005545386142537,"score_spread":0.19544321637530954,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3208717017","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996598,0.000014594113,0.00012097115,0.0000019801398,2.946003e-7,0.0000015742547,0.000041252242,0.000013144293,0.00014645862],"genre_scores_gemma":[0.99977535,0.00001099643,0.00013271814,0.0000014742275,3.5184414e-7,0.0000016452047,0.000034990673,0.0000011204564,0.000041299525],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999621,0.000005220034,0.0000020514265,0.000013307989,0.000007872025,0.000009509639],"domain_scores_gemma":[0.9999249,0.000032125994,0.000018168143,0.000003145651,0.00000923108,0.000012577684],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010439286,0.00016471138,0.000105259,0.00030360607,0.00014878102,0.00026448234,0.00012508714,0.000115928524,0.00048258397],"category_scores_gemma":[0.000090518224,0.00007908199,0.00011498051,0.00015946609,0.00013787138,0.00015406238,0.00012546462,0.00009634281,0.00004434247],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00040903874,0.00011059482,0.6347197,0.00007474532,0.000055906006,0.00025176714,0.00034355122,0.017301021,0.32509875,0.00021485458,0.00017883473,0.021241179],"study_design_scores_gemma":[0.000009698283,0.00011031076,0.97509855,0.0000039779015,0.000017363416,0.000053242777,0.00013196527,0.010815601,0.013513579,0.00004507332,0.00019437935,0.0000063198027],"about_ca_topic_score_codex":0.006840564,"about_ca_topic_score_gemma":0.01373723,"teacher_disagreement_score":0.006840564,"about_ca_system_score_codex":0.00036037594,"about_ca_system_score_gemma":0.00013152238,"threshold_uncertainty_score":0.013601482},"labels":[],"label_agreement":null},{"id":"W3211159253","doi":"10.1002/eco.2373","title":"Global patterns of particulate organic carbon export from land to the ocean","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":11,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université du Québec à Montréal","funders":"","keywords":"Environmental science; Fluvial; Carbon sink; Total organic carbon; Hydrology (agriculture); Particulate organic carbon; Ecosystem; Terrigenous sediment; Particulates; STREAMS; Global warming; Climate change; Oceanography; Nutrient; Geology; Environmental chemistry; Ecology; Sediment","score_opus":0.006526115746412785,"score_gpt":0.2031153436927392,"score_spread":0.1965892279463264,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3211159253","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9990693,0.000042843272,0.00020555164,0.000027867298,0.0000016523547,0.0000016031736,0.00033585157,0.000015233309,0.00030013907],"genre_scores_gemma":[0.99929655,0.00003815991,0.00018330666,0.000007933114,0.0000014934851,0.0000024631768,0.00037226593,0.0000039424194,0.00009379421],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999534,0.0000071176228,0.0000040350487,0.000022125294,0.0000057083057,0.000007647449],"domain_scores_gemma":[0.9998995,0.000019453395,0.000033768254,0.000012244942,0.000021485255,0.000013560768],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014945785,0.00022386861,0.00013510532,0.00036127254,0.00010696608,0.00044462358,0.00013217262,0.00020641992,0.0004682129],"category_scores_gemma":[0.0001780992,0.00011456976,0.00038437563,0.0004842025,0.00018876343,0.00028765295,0.00024977681,0.00012995311,0.00006626046],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010181413,0.00002899536,0.9476782,0.000050311315,0.00019060714,0.00013408421,0.000112801405,0.031197393,0.013889764,0.00045216666,0.00030953676,0.005854385],"study_design_scores_gemma":[0.000009236405,0.000032435742,0.9663803,0.000007968995,0.000040563245,0.000034121673,0.00014524761,0.031373315,0.0011841956,0.00019766488,0.00058312004,0.00001175729],"about_ca_topic_score_codex":0.009431148,"about_ca_topic_score_gemma":0.006516934,"teacher_disagreement_score":0.009431148,"about_ca_system_score_codex":0.0003678481,"about_ca_system_score_gemma":0.00016634417,"threshold_uncertainty_score":0.018752515},"labels":[],"label_agreement":null},{"id":"W3216404419","doi":"10.1002/eco.2390","title":"Drought in intermittent river and ephemeral stream networks","year":2021,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Watershed Management Studies","field":"Environmental Science","cited_by":49,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Agence Nationale de la Recherche","keywords":"Ephemeral key; Ecohydrology; Ecosystem; River ecosystem; Ecology; Environmental science; Environmental resource management; Geography; Biology","score_opus":0.0057873921430495,"score_gpt":0.2036536107219775,"score_spread":0.197866218578928,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3216404419","genre_codex":"review","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.11676852,0.85968107,0.008074184,0.0041239443,0.00071968907,0.00007939875,0.0017017422,0.000055969267,0.008795458],"genre_scores_gemma":[0.5365656,0.45756537,0.002907729,0.0007613504,0.0005901523,0.000079436926,0.0006394265,0.000010995292,0.0008798976],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.9994276,0.00021825128,0.0001027162,0.00010240593,0.00010327805,0.000045732126],"domain_scores_gemma":[0.9983479,0.0009871933,0.00041879318,0.000031926153,0.00016156591,0.0000525684],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0008743085,0.00018338372,0.00039517187,0.0011034291,0.00027004938,0.0010709898,0.00025728176,0.000318649,0.001062773],"category_scores_gemma":[0.0029208434,0.000111887784,0.0004139328,0.002043991,0.00037355162,0.001388805,0.00050282467,0.00039186538,0.000065657136],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00019968761,0.000070758244,0.073342994,0.046274066,0.0013197972,0.0010296152,0.0027022846,0.008642091,0.0027855074,0.032623358,0.01790127,0.8131086],"study_design_scores_gemma":[0.00006360707,0.00036807876,0.3303678,0.03719002,0.0025370005,0.0029464292,0.0068049654,0.009366672,0.0026462537,0.060241975,0.54728925,0.00017780684],"about_ca_topic_score_codex":0.0040960447,"about_ca_topic_score_gemma":0.006275472,"teacher_disagreement_score":0.0040960447,"about_ca_system_score_codex":0.00064222934,"about_ca_system_score_gemma":0.0010547433,"threshold_uncertainty_score":0.008144379},"labels":[],"label_agreement":null},{"id":"W4205490433","doi":"10.1002/eco.2403","title":"Ecological impacts of shortening fire return intervals on boreal peatlands and transition zones using integrated in situ field sampling and lidar approaches","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; University of Lethbridge","funders":"Western Economic Diversification Canada; Natural Sciences and Engineering Research Council of Canada; Canada Foundation for Innovation; Alberta Environment and Parks","keywords":"Peat; Boreal; Vegetation (pathology); Environmental science; Deciduous; Ecological succession; Physical geography; Ecology; Geography","score_opus":0.03153176370532116,"score_gpt":0.2477959867932388,"score_spread":0.21626422308791765,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4205490433","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99956435,0.000039930303,0.00016151398,0.0000026150756,8.718311e-7,0.000003815021,0.00007050944,0.000003932641,0.00015255247],"genre_scores_gemma":[0.99922335,0.00002282689,0.0005640038,0.000004000271,0.0000010803539,0.0000060377292,0.00011655028,9.032421e-7,0.00006135772],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998324,0.000036226927,0.000012286931,0.000046572135,0.000030042114,0.000042430624],"domain_scores_gemma":[0.99952996,0.000078622965,0.00018563976,0.000023817563,0.0001001843,0.00008176937],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00045683622,0.00018490177,0.00015243307,0.0009066919,0.00039577132,0.00043815712,0.0003156743,0.00013537277,0.00038890197],"category_scores_gemma":[0.0005205986,0.000107651875,0.00015575986,0.00059649785,0.0002201615,0.00024068441,0.0002871348,0.00014554636,0.000051936167],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00015974499,0.000063736865,0.9792211,0.00002513785,0.00004252323,0.00007365687,0.0004102941,0.00034252892,0.009405862,0.000024205354,0.000042474512,0.010188746],"study_design_scores_gemma":[0.0000012853453,0.000032962485,0.99839395,0.0000039194965,0.000007857222,0.000040378243,0.0005371381,0.0005970108,0.00031568197,0.000009185541,0.000058705755,0.0000019273068],"about_ca_topic_score_codex":0.06109412,"about_ca_topic_score_gemma":0.21639411,"teacher_disagreement_score":0.06109412,"about_ca_system_score_codex":0.0004856801,"about_ca_system_score_gemma":0.00038474367,"threshold_uncertainty_score":0.12147701},"labels":[],"label_agreement":null},{"id":"W4211069117","doi":"10.1002/eco.2410","title":"Inferred seasonal alternation in the anatomical structures determining maximum transpiration rate in upland boreal stand types","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Natural Resources Canada; Canadian Forest Service","funders":"Natural Resources Canada","keywords":"Transpiration; Taiga; Environmental science; Boreal; Growing season; Atmospheric sciences; Water content; Precipitation; Limiting; Canopy; Water cycle; Potential evaporation; Hydrology (agriculture); Evapotranspiration; Agronomy; Ecology; Botany; Biology; Geology; Geography; Photosynthesis; Meteorology","score_opus":0.007491548356443776,"score_gpt":0.21505345400454234,"score_spread":0.20756190564809857,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4211069117","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996377,0.000016422393,0.00013941764,0.0000016256524,4.4243933e-7,0.0000011296986,0.00008905522,0.000004912806,0.00010925675],"genre_scores_gemma":[0.99971277,0.0000052297287,0.00012706482,0.0000012291327,5.2940516e-7,0.0000017468582,0.0001237892,0.0000014142955,0.000026238618],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99991393,0.00001816129,0.0000067523824,0.000028962102,0.000012285836,0.000019866844],"domain_scores_gemma":[0.9996692,0.000097175885,0.00010380707,0.000022825188,0.00004721327,0.00005986022],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028438968,0.00018140356,0.00017682488,0.0005861089,0.00027729027,0.00035362365,0.00020060594,0.0001802537,0.0003777636],"category_scores_gemma":[0.00041031095,0.00014371643,0.00017251215,0.0003179656,0.00022903018,0.00027882415,0.0001523985,0.00011474447,0.00007992016],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016465601,0.000042316773,0.9522729,0.000017504679,0.00003752227,0.000070676855,0.00017235639,0.0011498032,0.04159506,0.0000847557,0.000060349146,0.0043321177],"study_design_scores_gemma":[0.0000016812528,0.000017475739,0.99846447,7.776462e-7,0.0000036588992,0.000044817825,0.000034642308,0.000887181,0.0004774358,0.000020489491,0.00004535464,0.0000020348846],"about_ca_topic_score_codex":0.009809099,"about_ca_topic_score_gemma":0.029364204,"teacher_disagreement_score":0.009809099,"about_ca_system_score_codex":0.0002916452,"about_ca_system_score_gemma":0.00012223356,"threshold_uncertainty_score":0.01950401},"labels":[],"label_agreement":null},{"id":"W4221106620","doi":"10.1002/eco.2417","title":"Phloem water isotopically different to xylem water: Potential causes and implications for ecohydrological tracing","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":48,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Natural Sciences and Engineering Research Council of Canada; Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung; École Polytechnique Fédérale de Lausanne","keywords":"Xylem; Phloem; Transpiration; Water transport; Botany; Water flow; Environmental science; Biology; Soil science; Photosynthesis","score_opus":0.007742411774782096,"score_gpt":0.20920614465636847,"score_spread":0.20146373288158637,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4221106620","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9927937,0.00026035847,0.006288888,0.00006730844,0.000005621045,0.000008955214,0.00011106455,0.00006323701,0.00040101906],"genre_scores_gemma":[0.99909246,0.000034400116,0.00066845794,0.000018442033,0.0000023139755,0.0000052473592,0.000051782226,0.000010690615,0.00011634123],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9998455,0.000027514765,0.000009507978,0.00006892899,0.00002846696,0.000019966701],"domain_scores_gemma":[0.99944896,0.00018805188,0.00016257439,0.00007420893,0.00008868739,0.000037490983],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00045439714,0.0002038417,0.00022592371,0.0004158298,0.00023635522,0.00034349787,0.00055590336,0.00027012918,0.0005309372],"category_scores_gemma":[0.00054690475,0.00024001913,0.00009395308,0.00042887373,0.00048752403,0.0005408855,0.00040473044,0.00029465556,0.00006376179],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00025715065,0.00004506337,0.12571345,0.000058212867,0.000028991975,0.00011402495,0.0003368012,0.00041366694,0.86261374,0.0006164924,0.000082488754,0.009719904],"study_design_scores_gemma":[0.000011188627,0.000109857734,0.8623911,0.0000073540173,0.000025664052,0.00017253024,0.00035294623,0.010334939,0.124658994,0.0010303985,0.00088894344,0.000016065178],"about_ca_topic_score_codex":0.0020076374,"about_ca_topic_score_gemma":0.003200277,"teacher_disagreement_score":0.0020076374,"about_ca_system_score_codex":0.00041352125,"about_ca_system_score_gemma":0.00012961909,"threshold_uncertainty_score":0.0039919615},"labels":[],"label_agreement":null},{"id":"W4280498622","doi":"10.1002/eco.2431","title":"Evapotranspiration partitioning based on field‐stable oxygen isotope observations for an urban locust forest land","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Guelph","funders":"Shenzhen Science and Technology Innovation Program; National Key Research and Development Program of China; China Postdoctoral Science Foundation; National Natural Science Foundation of China","keywords":"Evapotranspiration; Environmental science; Transpiration; Vegetation (pathology); Hydrology (agriculture); Stable isotope ratio; Atmospheric sciences; Ecology; Chemistry; Photosynthesis; Geology","score_opus":0.01875056219403432,"score_gpt":0.21352410015479573,"score_spread":0.1947735379607614,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4280498622","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9991153,0.000017740182,0.0004422461,0.0000064997635,0.000001023099,0.0000032908865,0.00019220576,0.000014331392,0.00020737952],"genre_scores_gemma":[0.99934846,0.000009194051,0.00031472425,0.0000012291114,0.0000010304034,0.0000028298277,0.00026401156,0.0000021341887,0.00005640812],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999186,0.00001068836,0.0000053743524,0.000031627846,0.000013809108,0.00001990145],"domain_scores_gemma":[0.99986637,0.000038724327,0.000028272052,0.000014347076,0.000035713805,0.000016590067],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023526947,0.00026091555,0.00017473102,0.0008004637,0.00022861018,0.00039205205,0.00025002676,0.00019917326,0.00051010377],"category_scores_gemma":[0.00027483905,0.000102614744,0.0004269213,0.0007700444,0.00019036049,0.0003728438,0.00013390918,0.000095864256,0.000090157024],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00046923247,0.00020049053,0.7629951,0.00009124646,0.00015426746,0.0005954126,0.0002305784,0.1803487,0.021902828,0.00034003457,0.00054061355,0.032131534],"study_design_scores_gemma":[0.00001638092,0.00005716555,0.52497905,0.000006828311,0.00004450784,0.00006234303,0.00020635973,0.4710569,0.0031665582,0.00012059319,0.00026089538,0.000022382124],"about_ca_topic_score_codex":0.04079175,"about_ca_topic_score_gemma":0.038307086,"teacher_disagreement_score":0.04079175,"about_ca_system_score_codex":0.00077450334,"about_ca_system_score_gemma":0.00023765478,"threshold_uncertainty_score":0.08110863},"labels":[],"label_agreement":null},{"id":"W4285803476","doi":"10.1002/eco.2455","title":"The extent and magnitude of edge effects on woody vegetation in road‐bisected treed peatlands in boreal Alberta, Canada","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":10,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Alberta Ministry of Agriculture and Forestry; Agriculture Food and Rural Development; University of Alberta; Yukon Department of Environment","funders":"","keywords":"Boreal; Peat; Environmental science; Cover (algebra); Taiga; Vegetation (pathology); Canopy; Hydrology (agriculture); Physical geography; Substrate (aquarium); Ecology; Geology; Geography; Biology","score_opus":0.0028020076562066945,"score_gpt":0.18388780707644173,"score_spread":0.18108579942023503,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4285803476","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9990722,0.00011217057,0.000094122224,0.0000141495975,0.000001186003,0.0000029292223,0.00027290886,0.0000065051877,0.00042374397],"genre_scores_gemma":[0.9993316,0.000058671234,0.00018392738,0.000007118232,6.83908e-7,0.0000020611978,0.00019632012,0.0000018236694,0.00021774907],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997055,0.00004626963,0.000011930467,0.00006035596,0.00007379763,0.00010211936],"domain_scores_gemma":[0.99923635,0.00014380454,0.00015100469,0.000033905664,0.00029348742,0.00014139572],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004900813,0.00021501172,0.00021321073,0.0009984256,0.0008314462,0.0007593836,0.0005235324,0.00014296865,0.0007526506],"category_scores_gemma":[0.00096692244,0.00017035886,0.00025792673,0.0008971743,0.0006388982,0.00018026933,0.00042924532,0.00015064856,0.000067813045],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00010548807,0.000024874147,0.98916173,0.0000241794,0.00006860398,0.00011249276,0.000559797,0.0012121061,0.0017125508,0.00009842692,0.00019632524,0.006723361],"study_design_scores_gemma":[0.0000011419387,0.0000054936204,0.99866974,0.0000060128705,0.000007421117,0.00001416959,0.00043186118,0.00064490974,0.000049388436,0.000014905804,0.000152131,0.0000027163667],"about_ca_topic_score_codex":0.9697781,"about_ca_topic_score_gemma":0.9917036,"teacher_disagreement_score":0.03022188,"about_ca_system_score_codex":0.007098962,"about_ca_system_score_gemma":0.0044857413,"threshold_uncertainty_score":0.06079966},"labels":[],"label_agreement":null},{"id":"W4294541941","doi":"10.1002/eco.2476","title":"Quantifying the vertical water exchange of dominant tree species in a reclaimed landscape in the Athabasca oil sands region, Alberta","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Imperial Oil Limited; Suncor Energy Incorporated","keywords":"Environmental science; Interception; Transpiration; Groundwater recharge; Hydrology (agriculture); Canopy; Land reclamation; Peat; Growing season; Groundwater; Ecology; Geology; Aquifer","score_opus":0.021642777200644888,"score_gpt":0.22701921695598284,"score_spread":0.20537643975533795,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4294541941","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9989517,0.000056313762,0.000061821265,0.00000941531,9.326901e-7,0.0000061803257,0.00040728445,0.000008025526,0.0004983885],"genre_scores_gemma":[0.9981287,0.00009087162,0.0003408864,0.000010122945,0.000001135292,0.0000066573157,0.000743771,0.000002845145,0.0006748631],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99986887,0.000007518715,0.000004657372,0.00003111286,0.0000492219,0.000038625578],"domain_scores_gemma":[0.99977297,0.000020228415,0.000036513346,0.000009517793,0.000105997904,0.000054816002],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014979627,0.00025307768,0.00016395423,0.0009906541,0.0008594635,0.0005525474,0.00060451264,0.00016624774,0.00048028052],"category_scores_gemma":[0.00018354117,0.00011120714,0.00016770023,0.0013241614,0.0002680897,0.00014754807,0.00023845985,0.00016726984,0.00010264606],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00029809398,0.0001231115,0.95207185,0.00005306733,0.00007890467,0.00034841977,0.0011615034,0.001892277,0.02446206,0.00012952546,0.0005710186,0.018810268],"study_design_scores_gemma":[0.000003093392,0.000016385515,0.9973968,0.0000045594884,0.000008361555,0.000027792037,0.00063625554,0.0009867675,0.00045176304,0.000010234508,0.00045371958,0.0000042958395],"about_ca_topic_score_codex":0.9227306,"about_ca_topic_score_gemma":0.9783891,"teacher_disagreement_score":0.077269375,"about_ca_system_score_codex":0.0056734174,"about_ca_system_score_gemma":0.0022326526,"threshold_uncertainty_score":0.1554488},"labels":[],"label_agreement":null},{"id":"W4311009612","doi":"10.1002/eco.2516","title":"Effects of microforms on the evaporation of peat‐bryophyte‐litter column in a montane peatland in Canadian Rocky Mountain","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Canada First Research Excellence Fund; Alberta Innovates","keywords":"Peat; Bryophyte; Environmental science; Sphagnum; Montane ecology; Evaporation; Hydrology (agriculture); Atmospheric sciences; Ecology; Geology; Geography; Biology","score_opus":0.003059788666521751,"score_gpt":0.18098071474174626,"score_spread":0.1779209260752245,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4311009612","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9995654,0.00003860597,0.000023151646,0.00000718872,5.5104397e-7,0.0000032944674,0.00014588096,0.0000022098986,0.00021351161],"genre_scores_gemma":[0.9994815,0.000031061474,0.00008291769,0.0000074593545,7.142908e-7,0.0000037414818,0.00020241398,0.0000014993191,0.00018867238],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998518,0.000010646344,0.0000064589844,0.000034700566,0.00004248198,0.00005397201],"domain_scores_gemma":[0.99977094,0.00002567653,0.000034862078,0.000007140403,0.00008740012,0.00007392496],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015137513,0.0002255791,0.00026558532,0.0005727933,0.0012009484,0.0005635174,0.00035188012,0.00019718765,0.0007248272],"category_scores_gemma":[0.0002442822,0.00015106138,0.00028980474,0.00049550546,0.00040947672,0.0001780795,0.00030132022,0.000172696,0.00007738276],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00024654708,0.00007359332,0.9672573,0.000057136243,0.000109666595,0.00024803355,0.00096503197,0.0008035356,0.023450973,0.000054593405,0.00023898465,0.0064944983],"study_design_scores_gemma":[6.081033e-7,0.0000046412106,0.99952376,0.0000012931995,0.000002775652,0.000009000973,0.00015514533,0.0001229693,0.00011519651,0.0000016121841,0.00006137934,0.0000016751627],"about_ca_topic_score_codex":0.89390546,"about_ca_topic_score_gemma":0.9709457,"teacher_disagreement_score":0.10609454,"about_ca_system_score_codex":0.004165386,"about_ca_system_score_gemma":0.0024752084,"threshold_uncertainty_score":0.21343863},"labels":[],"label_agreement":null},{"id":"W4312045288","doi":"10.1002/eco.2515","title":"Long‐term trends in wetland event response with permafrost thaw‐induced landscape transition and hummock development","year":2022,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Wilfrid Laurier University","funders":"Natural Sciences and Engineering Research Council of Canada; ArcticNet","keywords":"Permafrost; Wetland; Peat; Environmental science; Hydrology (agriculture); Surface runoff; Terrain; Plateau (mathematics); Climate change; Thermokarst; Precipitation; Physical geography; Geology; Ecology; Geography; Oceanography","score_opus":0.02203679333130442,"score_gpt":0.23499655958585805,"score_spread":0.21295976625455362,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4312045288","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99810994,0.000060227052,0.000038001574,0.000030764928,0.0000023887117,0.000005753697,0.0013583895,0.000004077524,0.00039047402],"genre_scores_gemma":[0.99837434,0.000038292823,0.00005471641,0.000013275713,0.0000027795631,0.000009262286,0.0010711175,0.0000013107058,0.00043493285],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99985456,0.000012223029,0.000006841808,0.00003326251,0.000036619167,0.00005657928],"domain_scores_gemma":[0.99913967,0.00006613488,0.00026102853,0.00002451153,0.00027990257,0.00022869352],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022869543,0.00011353366,0.00014509476,0.00054742943,0.0003962385,0.0005317377,0.0003367073,0.00021155732,0.0013764277],"category_scores_gemma":[0.00080257404,0.00006721399,0.00015542888,0.000752147,0.00021408343,0.0002144078,0.0003582981,0.00029211826,0.00016646775],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000053773954,0.000021155145,0.99689937,0.0000063567018,0.000021556905,0.000031600142,0.00014470518,0.00009486542,0.00040669838,0.00002299593,0.00025644383,0.0020404493],"study_design_scores_gemma":[2.791214e-7,0.0000042833112,0.9996773,0.0000013446545,0.0000012754242,0.000004768437,0.00011099618,0.0000719188,0.000024893709,0.0000027095837,0.0000996039,6.9968104e-7],"about_ca_topic_score_codex":0.48163202,"about_ca_topic_score_gemma":0.78149414,"teacher_disagreement_score":0.48163202,"about_ca_system_score_codex":0.0020405457,"about_ca_system_score_gemma":0.00148517,"threshold_uncertainty_score":0.9576572},"labels":[],"label_agreement":null},{"id":"W4319915063","doi":"10.1002/eco.2530","title":"Applying a two‐dimensional hydrodynamic model to estimate fish stranding risk downstream from a hydropeaking hydroelectric station","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Saskatchewan; Institut National de la Recherche Scientifique; Fisheries and Oceans Canada","funders":"Fisheries and Oceans Canada","keywords":"Environmental science; Hydropower; Transect; Fish <Actinopterygii>; Fishery; Hydroelectricity; Hydrology (agriculture); Habitat; Bathymetry; Geography; Ecology; Oceanography; Geology; Biology; Cartography","score_opus":0.009876626024018922,"score_gpt":0.25572555010812864,"score_spread":0.24584892408410972,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4319915063","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97563064,0.0000244067,0.022262666,0.00015791571,0.000015167073,0.00003731667,0.0005656301,0.00015713842,0.0011491149],"genre_scores_gemma":[0.9957932,0.000016430686,0.0031214927,0.00001458858,0.0000042046213,0.000025501307,0.0002149746,0.00000675961,0.0008027822],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99981695,0.000042042724,0.000013756287,0.00006294842,0.000021488728,0.000042882737],"domain_scores_gemma":[0.9995078,0.00020195961,0.00009918636,0.000033027027,0.00008940656,0.00006877362],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00043487005,0.000530916,0.00041380257,0.0006782548,0.00054711703,0.0010103774,0.0008600709,0.0010365873,0.0012137005],"category_scores_gemma":[0.0012992641,0.0007403613,0.0008746248,0.00051423017,0.00048422394,0.0005165772,0.0006276138,0.00072331046,0.0001686325],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000017620725,0.000029776846,0.018047197,0.0000044992084,0.00002586322,0.00003679823,0.000015220889,0.9802957,0.00035135407,0.00011796744,0.000089471854,0.0009685713],"study_design_scores_gemma":[0.0000047495078,0.000007979578,0.003528978,0.0000010213947,0.0000040023597,0.0000034069133,0.000010941056,0.99632436,0.00003691388,0.00004359227,0.000028753713,0.0000052380733],"about_ca_topic_score_codex":0.21620971,"about_ca_topic_score_gemma":0.114394195,"teacher_disagreement_score":0.21620971,"about_ca_system_score_codex":0.0020178256,"about_ca_system_score_gemma":0.0018538823,"threshold_uncertainty_score":0.42990243},"labels":[],"label_agreement":null},{"id":"W4320890539","doi":"10.1002/eco.2535","title":"Dissolved organic carbon load variability in the rainfall season dominated its interannual variability in the snowmelt driven basin: Evidence from 41 years data of headwater streams","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Soil and Water Nutrient Dynamics","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Ministry of Environment; Ministry of the Environment, Conservation and Parks","funders":"National Natural Science Foundation of China","keywords":"Snowmelt; Dissolved organic carbon; Environmental science; STREAMS; Hydrology (agriculture); Watershed; Climatic variability; Carbon cycle; Discharge; Seasonality; Growing season; Drainage basin; Climate change; Ecology; Geology; Surface runoff; Ecosystem; Geography; Biology","score_opus":0.021373551749157456,"score_gpt":0.25669151181069455,"score_spread":0.2353179600615371,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4320890539","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99932635,0.000045195524,0.000045103505,0.00001162393,0.0000010474965,0.0000024613082,0.00042654222,0.0000027151289,0.00013896437],"genre_scores_gemma":[0.9988366,0.000068495996,0.00009050401,0.0000101148335,0.000005974033,0.000005669553,0.000874542,0.0000022247966,0.00010580757],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997509,0.000035068053,0.000027988355,0.000068066496,0.00006422142,0.000053745047],"domain_scores_gemma":[0.99915683,0.00010818697,0.00026022398,0.00007170991,0.00026620022,0.00013680902],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005275611,0.00014931198,0.00022847249,0.0010375812,0.0006611673,0.0005290285,0.00023737464,0.00022571659,0.00041916236],"category_scores_gemma":[0.00075946137,0.00014157878,0.00030654247,0.0018020519,0.00037773565,0.00032357188,0.00038551728,0.00015845707,0.000086304215],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00003720142,0.00001487497,0.99562824,0.000011150649,0.00005205722,0.00009294064,0.00047433074,0.00009163936,0.0013222276,0.000015387968,0.00010704147,0.002153016],"study_design_scores_gemma":[7.6270845e-7,0.0000067876204,0.99944097,0.0000017279559,0.000011433336,0.000014542643,0.0001622904,0.00014467414,0.00008122289,0.000005592649,0.0001284184,0.0000015828559],"about_ca_topic_score_codex":0.09349953,"about_ca_topic_score_gemma":0.187923,"teacher_disagreement_score":0.09349953,"about_ca_system_score_codex":0.0006086859,"about_ca_system_score_gemma":0.0008407716,"threshold_uncertainty_score":0.18591064},"labels":[],"label_agreement":null},{"id":"W4362668890","doi":"10.1002/eco.2547","title":"Differences between stem and branch xylem water isotope composition in four tropical tree species","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan; Trent University","funders":"Wet Tropics Management Authority; Australian Government; Global Institute for Water Security, University of Saskatchewan","keywords":"Xylem; Fractionation; Stable isotope ratio; Botany; Biology; Isotope; Chemistry","score_opus":0.015543407769083032,"score_gpt":0.19882378319064317,"score_spread":0.18328037542156014,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4362668890","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997009,0.000040975276,0.00004845466,0.0000014504474,4.3444007e-7,0.0000018552299,0.0000700078,0.0000031683612,0.00013273065],"genre_scores_gemma":[0.9992963,0.000051357445,0.00019136806,0.000007309748,0.0000010269201,0.0000063322764,0.00025762222,0.0000030706806,0.00018553868],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99995244,0.000005480339,0.0000033609058,0.000019953626,0.000007824482,0.00001091077],"domain_scores_gemma":[0.9998578,0.00002468643,0.00004561444,0.00000775,0.000026852631,0.00003728631],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009603728,0.00020825925,0.00020331371,0.0006882584,0.00033985992,0.00023259279,0.00014968302,0.00016961829,0.0006568459],"category_scores_gemma":[0.00010770957,0.00015371754,0.00012390889,0.00039616786,0.00018872439,0.00021623129,0.00021332076,0.00012577786,0.00012760602],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00038514877,0.00005804079,0.22736473,0.0001047256,0.00006032962,0.0001503604,0.0010297296,0.00012925561,0.76460433,0.00005292714,0.0000451444,0.0060152076],"study_design_scores_gemma":[0.000003684342,0.0001263355,0.9925196,0.0000028174409,0.000017432843,0.00012538774,0.0002751892,0.00016767936,0.0065286006,0.0000148955805,0.00021418658,0.000004163237],"about_ca_topic_score_codex":0.003868529,"about_ca_topic_score_gemma":0.008003172,"teacher_disagreement_score":0.003868529,"about_ca_system_score_codex":0.0001870645,"about_ca_system_score_gemma":0.00009276991,"threshold_uncertainty_score":0.0076919794},"labels":[],"label_agreement":null},{"id":"W4362721819","doi":"10.1002/eco.2550","title":"Riparian cottonwood mortality following compound impacts from river water withdrawal and hydroclimatic variation","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Alberta Environment and Protected Areas; University of Lethbridge","funders":"Natural Sciences and Engineering Research Council of Canada; Alberta Innovates; Alberta Environment and Parks","keywords":"Woodland; Riparian zone; Environmental science; Hydrology (agriculture); Streamflow; Pacific decadal oscillation; Riparian forest; Geography; Climatology; Ecology; Drainage basin; Geology; Habitat; El Niño Southern Oscillation","score_opus":0.00992429007263173,"score_gpt":0.23003708179024407,"score_spread":0.22011279171761233,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4362721819","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99974173,0.000016044201,0.00002030368,0.000005662603,7.277576e-7,0.0000011984022,0.00008958027,0.0000018219403,0.00012301968],"genre_scores_gemma":[0.9996989,0.000009665402,0.000014396587,0.0000043381424,0.0000015968741,0.000001597238,0.00018102895,8.7191023e-7,0.000087699984],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998988,0.000024312461,0.0000048662732,0.000027203854,0.000018272374,0.000026587266],"domain_scores_gemma":[0.9996464,0.00004499764,0.00013065351,0.000031055726,0.00006575783,0.00008109724],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002984634,0.00014637028,0.0001326414,0.00045384583,0.00019307449,0.00031276964,0.00018319653,0.00013710288,0.0008393919],"category_scores_gemma":[0.0005214655,0.00007332473,0.00013319602,0.00033704762,0.00018036942,0.00016767513,0.00028526,0.00017616636,0.000119277975],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00016828696,0.000033664066,0.9908379,0.000005202358,0.00006496226,0.00023569036,0.00013092585,0.00022134284,0.0042580278,0.000016129108,0.00015197952,0.0038758623],"study_design_scores_gemma":[3.4035526e-7,0.0000110242245,0.9997563,3.681845e-7,0.0000023360249,0.000017057693,0.000035556408,0.00009265263,0.00005263463,0.0000036677095,0.000027382242,7.07189e-7],"about_ca_topic_score_codex":0.010718783,"about_ca_topic_score_gemma":0.026408087,"teacher_disagreement_score":0.010718783,"about_ca_system_score_codex":0.00031388985,"about_ca_system_score_gemma":0.00016278421,"threshold_uncertainty_score":0.021312833},"labels":[],"label_agreement":null},{"id":"W4367394585","doi":"10.1002/eco.2554","title":"Vulnerability assessment of peatland complexes in the Hudson Plains (Ontario, Canada) to permafrost‐thaw‐induced landcover and hydrological change using a multiscale approach","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":6,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Lethbridge; Ministry of Natural Resources and Forestry; Ontario Forest Research Institute; Wilfrid Laurier University","funders":"Natural Sciences and Engineering Research Council of Canada; ArcticNet","keywords":"Permafrost; Peat; Transect; Land cover; Physical geography; Thermokarst; Wetland; Lidar; Hydrology (agriculture); Environmental science; Geology; Land use; Remote sensing; Geography; Ecology; Oceanography","score_opus":0.11994626080567655,"score_gpt":0.30576641100396806,"score_spread":0.1858201501982915,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4367394585","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9989135,0.00006299112,0.00020054537,0.000026247562,7.852398e-7,0.000013321167,0.00026344127,0.0000050951403,0.0005140227],"genre_scores_gemma":[0.99938524,0.000034135508,0.00026441432,0.0000053612707,6.212362e-7,0.0000059668464,0.00015424682,9.3076375e-7,0.00014920447],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999897,0.000009782998,0.0000042880015,0.000027570082,0.000022399787,0.00003894937],"domain_scores_gemma":[0.99973756,0.00003747821,0.000067356,0.000014600454,0.00007192897,0.000070995986],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001974215,0.00020709235,0.00017889419,0.001217186,0.0007775694,0.00077336724,0.0004972289,0.00021266885,0.0006609339],"category_scores_gemma":[0.00063758006,0.00015015062,0.0002847288,0.000989363,0.0005077416,0.00022110372,0.00058145757,0.00012856392,0.000035996676],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000053137424,0.000019868772,0.98239315,0.000027015316,0.00009311174,0.00016331834,0.00058057526,0.007788793,0.0020205153,0.0003065816,0.0002648932,0.006288958],"study_design_scores_gemma":[0.0000032421383,0.000008215852,0.9828689,0.00000848034,0.000019066521,0.000021739896,0.00088458695,0.0156048825,0.00012332981,0.00009478243,0.00035708945,0.00000559183],"about_ca_topic_score_codex":0.94407725,"about_ca_topic_score_gemma":0.97734946,"teacher_disagreement_score":0.055922747,"about_ca_system_score_codex":0.009943476,"about_ca_system_score_gemma":0.0036099881,"threshold_uncertainty_score":0.112504125},"labels":[],"label_agreement":null},{"id":"W4386126101","doi":"10.1002/eco.2579","title":"Evaluating the physical habitat of riffle‐pool design in support of river habitat protection and rehabilitation","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":8,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"National Key Research and Development Program of China","keywords":"Riffle; Habitat; Environmental science; Hydrology (agriculture); Flood myth; Ecology; Geography; Geology; Biology; Geotechnical engineering","score_opus":0.028963183005819782,"score_gpt":0.29141041419385433,"score_spread":0.26244723118803454,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4386126101","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.997414,0.000033983324,0.001994436,0.0000069077464,0.0000011055904,0.000010657348,0.000053099808,0.000016856256,0.00046897837],"genre_scores_gemma":[0.99854076,0.000014098737,0.0012331242,0.000001946081,5.120846e-7,0.000006337804,0.00004550451,0.0000014609835,0.00015632954],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99978393,0.00006788523,0.000011911006,0.000032036325,0.000061776955,0.000042505922],"domain_scores_gemma":[0.99956006,0.00008772586,0.00011557296,0.000031335898,0.00013136311,0.00007400585],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037566148,0.00030210926,0.00023174961,0.00061096693,0.00020948803,0.00047940508,0.0002878255,0.00023956508,0.001275656],"category_scores_gemma":[0.0007895785,0.000112726084,0.0002669944,0.0003207811,0.00021011978,0.00030249718,0.00036822894,0.00009171614,0.000125751],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00068117754,0.00035993315,0.6122901,0.00040056088,0.00027588796,0.0005495726,0.00040911714,0.2036338,0.07754127,0.0005765447,0.0008436513,0.10243841],"study_design_scores_gemma":[0.00002268997,0.002072989,0.8391077,0.000047199977,0.00011612495,0.000237151,0.0007730162,0.147042,0.009311959,0.0002314421,0.0009922502,0.00004542473],"about_ca_topic_score_codex":0.0033635662,"about_ca_topic_score_gemma":0.012424124,"teacher_disagreement_score":0.0033635662,"about_ca_system_score_codex":0.00039872626,"about_ca_system_score_gemma":0.00043213877,"threshold_uncertainty_score":0.006687999},"labels":[],"label_agreement":null},{"id":"W4386714058","doi":"10.1002/eco.2589","title":"Sap flux and stable isotopes of water show contrasting tree water uptake strategies in two co‐occurring tropical rainforest tree species","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":5,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Global Institute for Water Security; University of Saskatchewan","funders":"Wet Tropics Management Authority","keywords":"Transpiration; Xylem; Flux (metallurgy); Environmental science; Rainforest; Soil water; Tropical rainforest; Atmospheric sciences; Water cycle; Stable isotope ratio; Hydrology (agriculture); Water use; Environmental chemistry; Ecology; Soil science; Biology; Chemistry; Botany; Geology; Photosynthesis","score_opus":0.011747442984544288,"score_gpt":0.22646522586713796,"score_spread":0.2147177828825937,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4386714058","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998203,0.000025499141,0.000061555016,0.0000012270922,3.143155e-7,0.0000012060741,0.000031109215,0.0000021313713,0.00005668276],"genre_scores_gemma":[0.9996933,0.000015957605,0.0001410822,0.0000037450022,9.593118e-7,0.000003881824,0.00009901318,0.0000016961216,0.00004040824],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998776,0.000019183608,0.000008771311,0.000049597034,0.000019704494,0.000025141984],"domain_scores_gemma":[0.99965703,0.000073123905,0.00013078432,0.000021981441,0.000049996546,0.00006706695],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002359229,0.0002180399,0.0002855596,0.0010738719,0.00035312554,0.00034526785,0.00021299596,0.00024924893,0.00033891515],"category_scores_gemma":[0.00026013138,0.00018388395,0.00015171284,0.0005335977,0.0003392287,0.000310953,0.000296035,0.00016553055,0.000096821735],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004016453,0.00009028418,0.5517331,0.00007478235,0.000113625116,0.00019805669,0.0011148102,0.0002410806,0.43924737,0.000054391934,0.00004358261,0.0066873184],"study_design_scores_gemma":[0.0000019926026,0.00004715289,0.9972288,0.0000015373677,0.000011630482,0.000107714295,0.0001738778,0.00030777793,0.0020483106,0.000010735695,0.00005736791,0.0000030235476],"about_ca_topic_score_codex":0.0031696442,"about_ca_topic_score_gemma":0.006135451,"teacher_disagreement_score":0.0031696442,"about_ca_system_score_codex":0.00021616778,"about_ca_system_score_gemma":0.00009852577,"threshold_uncertainty_score":0.0063024163},"labels":[],"label_agreement":null},{"id":"W4386839202","doi":"10.1002/eco.2583","title":"Application of a fish habitat model to assess habitat fragmentation using high flow and sediment transport in the Rumei Dam in Lancang River (China)","year":2023,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"National Key Research and Development Program of China","keywords":"Habitat; Hydropower; Environmental science; Habitat fragmentation; Fragmentation (computing); Fish migration; Fluvial; River ecosystem; Habitat destruction; Fishery; Ecosystem; Hydrology (agriculture); Ecology; Dam removal; Sediment; Geology; Biology","score_opus":0.01730466501778,"score_gpt":0.2516122519421805,"score_spread":0.2343075869244005,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4386839202","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.98833126,0.000022730941,0.010424401,0.000053430325,0.0000039170413,0.000020143625,0.000113514536,0.000060861792,0.0009697619],"genre_scores_gemma":[0.99862814,0.000012978457,0.00092511025,0.0000048894935,8.4394736e-7,0.000012825504,0.00004407151,0.000002703162,0.0003684069],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99993265,0.000016324862,0.000003981686,0.000018431174,0.0000078555495,0.000020762765],"domain_scores_gemma":[0.99986684,0.0000432543,0.000023553539,0.000009793036,0.000029073644,0.000027391983],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002477213,0.00042646308,0.0002642454,0.00047203345,0.00041187595,0.0004334354,0.0005515526,0.00052159926,0.0008995805],"category_scores_gemma":[0.00037934893,0.00025942377,0.00046783817,0.00033786715,0.0003377649,0.00038302114,0.00043424,0.0002144849,0.000058658625],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00004026986,0.00005255236,0.026886437,0.000009620497,0.000020180118,0.0001192879,0.000039862087,0.96806765,0.0012735532,0.00028323295,0.00007866543,0.0031287682],"study_design_scores_gemma":[0.0000078212115,0.000031090178,0.0053747226,0.0000014774439,0.000006334987,0.000007739902,0.000029925575,0.99431014,0.00010441148,0.00008741095,0.000034359153,0.000004626306],"about_ca_topic_score_codex":0.120621,"about_ca_topic_score_gemma":0.07894307,"teacher_disagreement_score":0.120621,"about_ca_system_score_codex":0.0014375432,"about_ca_system_score_gemma":0.0014391793,"threshold_uncertainty_score":0.23983783},"labels":[],"label_agreement":null},{"id":"W4387674656","doi":"10.1002/eco.2439","title":"Issue Information","year":2023,"lang":"en","type":"paratext","venue":"Ecohydrology","topic":"Diverse Scientific and Economic Studies","field":"Economics, Econometrics and Finance","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia; Okanagan University College","funders":"","keywords":"Computer science; Geology","score_opus":0.028790198748874136,"score_gpt":0.21835343325547363,"score_spread":0.18956323450659948,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4387674656","genre_codex":"other","genre_gemma":"other","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"other","genre_consensus":"other","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.00028874696,0.0006567242,0.0007720868,0.0046107895,0.017696805,0.00046076288,0.043669723,0.002189638,0.9296548],"genre_scores_gemma":[0.0010150595,0.0003854552,0.00028424695,0.0012379956,0.0014078923,0.00011717429,0.011619638,0.0005531803,0.9833793],"study_design_codex":"not_applicable","study_design_gemma":"not_applicable","domain_scores_codex":[0.99872005,0.00013934866,0.00009770035,0.0001756027,0.00070050027,0.00016671345],"domain_scores_gemma":[0.9942934,0.000825547,0.00020768393,0.0006670071,0.0028377732,0.0011685181],"candidate_categories":["insufficient_payload"],"consensus_categories":["insufficient_payload"],"category_scores_codex":[0.0013959376,0.0010728734,0.0014123081,0.0028622048,0.0014933563,0.0058141053,0.001835328,0.0022792893,0.94190663],"category_scores_gemma":[0.009287061,0.00049929204,0.000855292,0.002676719,0.00041880188,0.0030682525,0.0019207352,0.0019358911,0.88868564],"study_design_candidate":"not_applicable","study_design_consensus":"not_applicable","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000025983561,0.000017631679,0.00003836966,0.000112914386,0.0000015351275,0.0000127599715,0.000007796808,0.000016764494,0.00006775267,0.00085330824,0.9816866,0.017158534],"study_design_scores_gemma":[0.000011956267,0.000012118555,0.000172774,0.00008391136,0.0000015809637,0.000017455079,0.000017235145,0.000031551142,0.00007204303,0.00045525134,0.99912053,0.0000034536563],"about_ca_topic_score_codex":0.002542528,"about_ca_topic_score_gemma":0.004853853,"teacher_disagreement_score":0.05809337,"about_ca_system_score_codex":0.0013419719,"about_ca_system_score_gemma":0.0023985044,"threshold_uncertainty_score":0.08286315},"labels":[],"label_agreement":null},{"id":"W4390499274","doi":"10.1002/eco.2611","title":"A process‐based water stable isotope mixing model for plant water sourcing","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":14,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Mixing (physics); Parametric statistics; Computer science; Environmental science; Biological system; Projection (relational algebra); Mathematics; Statistics; Algorithm; Physics","score_opus":0.009474358194990517,"score_gpt":0.2099291274952949,"score_spread":0.2004547693003044,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4390499274","genre_codex":"methods","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":null,"domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.15160973,0.0001401674,0.8437967,0.00042133813,0.00002367103,0.000074804295,0.00035242617,0.00036764384,0.0032135148],"genre_scores_gemma":[0.9553713,0.0000952064,0.040686466,0.00006988718,0.000019490062,0.0001729881,0.00026321624,0.00005172907,0.0032698098],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9995254,0.00016049446,0.000021960948,0.00017012861,0.00007406422,0.000047882248],"domain_scores_gemma":[0.99905413,0.00059537706,0.00014335196,0.0000501521,0.0001169245,0.000039952418],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0021565282,0.0006498438,0.00065374357,0.0006945815,0.0003949405,0.00097029353,0.0020218773,0.0012392647,0.0016970267],"category_scores_gemma":[0.0026607888,0.00058399606,0.0010422296,0.0005544955,0.0011140296,0.0013856408,0.0009403188,0.0009830513,0.00027280097],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000047628364,0.000030200003,0.0023237874,0.000026979178,0.000040140127,0.000044912864,0.00006663282,0.97121215,0.0026503808,0.01841522,0.00018609277,0.004955874],"study_design_scores_gemma":[0.000004449922,0.0000070030133,0.00025127342,0.0000010719219,0.000004509191,0.0000055860846,0.0000033449437,0.9975618,0.00014528159,0.0018997155,0.00011027225,0.00000575615],"about_ca_topic_score_codex":0.012182214,"about_ca_topic_score_gemma":0.0066725775,"teacher_disagreement_score":0.012182214,"about_ca_system_score_codex":0.0014516376,"about_ca_system_score_gemma":0.00089332176,"threshold_uncertainty_score":0.024222612},"labels":[],"label_agreement":null},{"id":"W4392593140","doi":"10.1002/eco.2637","title":"Peat swamp hydrological connectivity and runoff vary by hydrogeomorphic setting: Implications for carbon storage","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"McMaster University; Western University; Nipissing University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Swamp; Surface runoff; Environmental science; Hydrology (agriculture); Peat; Geology; Ecology","score_opus":0.009103962134401908,"score_gpt":0.2333556958691315,"score_spread":0.2242517337347296,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4392593140","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9996803,0.0000120312825,0.00004526451,0.000003324344,1.6248777e-7,0.0000027441918,0.00007692692,0.0000020554105,0.00017736922],"genre_scores_gemma":[0.9997608,0.0000095823225,0.000070557675,0.0000025957622,2.0501402e-7,0.0000029626221,0.00005690296,0.0000015065416,0.00009490924],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999261,0.000007749657,0.0000040705545,0.000021674756,0.000014264273,0.000026135896],"domain_scores_gemma":[0.9998105,0.000025842142,0.000045808625,0.000010991513,0.00005082627,0.000056127297],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00009850726,0.00012141713,0.00022069199,0.00047598334,0.0006399671,0.00059687236,0.0003078229,0.00012837833,0.0008491049],"category_scores_gemma":[0.0003377723,0.00013489832,0.00012573614,0.0005194514,0.000688117,0.00022535186,0.0004134351,0.000118456315,0.000058163885],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00012874966,0.000040085702,0.9295512,0.00003646849,0.000058179132,0.00031246268,0.0012133196,0.0009169861,0.06244031,0.00011075619,0.00011716027,0.0050744405],"study_design_scores_gemma":[5.250093e-7,0.0000053068675,0.9992969,9.970624e-7,0.0000017448531,0.000017866887,0.00027198126,0.00019320747,0.00014252082,0.000008349441,0.000059212467,0.0000014445875],"about_ca_topic_score_codex":0.36052978,"about_ca_topic_score_gemma":0.71590763,"teacher_disagreement_score":0.36052978,"about_ca_system_score_codex":0.0019291376,"about_ca_system_score_gemma":0.0010430043,"threshold_uncertainty_score":0.71686256},"labels":[],"label_agreement":null},{"id":"W4393380490","doi":"10.1002/eco.2648","title":"Increased tree water use with the development of a dense understory layer in a North American hardwood forest","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Université du Québec en Outaouais","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Understory; Hardwood; Tree (set theory); Forestry; Environmental science; Agroforestry; Hydrology (agriculture); Geography; Geology; Ecology; Canopy; Archaeology; Mathematics","score_opus":0.009506472063791916,"score_gpt":0.186569562144496,"score_spread":0.1770630900807041,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4393380490","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998982,0.00001829449,0.000019952715,0.0000027191165,3.3329025e-7,0.0000014067953,0.000014103733,0.0000013347499,0.00004357504],"genre_scores_gemma":[0.99982774,0.000014254424,0.000060639828,0.0000096164895,0.0000010424309,0.0000028771135,0.000030285164,4.1716112e-7,0.00005305498],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99990785,0.000012433369,0.0000053687622,0.000026409143,0.000023647686,0.000024326182],"domain_scores_gemma":[0.99959534,0.00006837521,0.00013808497,0.000022844493,0.00003623544,0.00013906727],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018753475,0.00017329611,0.00020019777,0.00048113926,0.00040494293,0.0004423304,0.00017357277,0.0001839962,0.0006768484],"category_scores_gemma":[0.00022806549,0.00017375626,0.00011949029,0.00024172963,0.0003465285,0.00021016184,0.00034736103,0.0002537726,0.000041644565],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00017913166,0.00014276407,0.9637082,0.000022107019,0.00006458661,0.00019716515,0.00030258164,0.00015941313,0.03225566,0.000023747401,0.00006454763,0.0028799928],"study_design_scores_gemma":[0.0000011960874,0.000023372999,0.9996271,4.731608e-7,0.0000029125626,0.000025762012,0.000052656243,0.0000615318,0.00017527459,0.0000046844484,0.000024186706,8.0320507e-7],"about_ca_topic_score_codex":0.009821769,"about_ca_topic_score_gemma":0.052059505,"teacher_disagreement_score":0.009821769,"about_ca_system_score_codex":0.0002978372,"about_ca_system_score_gemma":0.00017397625,"threshold_uncertainty_score":0.019529223},"labels":[],"label_agreement":null},{"id":"W4398771640","doi":"10.1002/eco.2664","title":"Enhancing ecological success in Yangtze River channel construction: A numerical modelling approach","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Alberta","funders":"National Key Research and Development Program of China","keywords":"Yangtze river; Channel (broadcasting); Environmental science; Hydrology (agriculture); Environmental resource management; Water resource management; Ecology; Computer science; Geography; Geology; China; Geotechnical engineering; Telecommunications","score_opus":0.011632237469266636,"score_gpt":0.21818759980963912,"score_spread":0.20655536234037247,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4398771640","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.97311515,0.00013472047,0.02027558,0.00026469748,0.000018919698,0.00005358105,0.0002237316,0.00008385207,0.005829654],"genre_scores_gemma":[0.99590945,0.000081678336,0.0031392102,0.000015397245,0.000006228144,0.000057093966,0.00006119047,0.000011161119,0.00071859156],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9998553,0.00005607614,0.0000069842913,0.00002856732,0.000012430202,0.00004060529],"domain_scores_gemma":[0.9994653,0.00032032884,0.00007053582,0.000027585,0.000063634885,0.000052620213],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00048241726,0.00055330683,0.0005279389,0.0011352954,0.0007327135,0.0013198428,0.00089860824,0.0012933556,0.0021809456],"category_scores_gemma":[0.0011617888,0.00045982984,0.0010282745,0.000934276,0.0009478443,0.00091454486,0.0010377553,0.000538444,0.00008550079],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000011991546,0.000023448549,0.0041705966,0.0000098994105,0.000012252408,0.00003442485,0.000027126907,0.9939774,0.00021627406,0.00063184625,0.000057022124,0.0008276862],"study_design_scores_gemma":[0.00000527895,0.000012041751,0.0009054055,0.0000031283425,0.0000062170157,0.0000035185851,0.000039260613,0.9987245,0.000035693334,0.00020146657,0.000058068257,0.000005369578],"about_ca_topic_score_codex":0.062110234,"about_ca_topic_score_gemma":0.037427176,"teacher_disagreement_score":0.062110234,"about_ca_system_score_codex":0.001728533,"about_ca_system_score_gemma":0.0019439334,"threshold_uncertainty_score":0.12349743},"labels":[],"label_agreement":null},{"id":"W4401776277","doi":"10.1002/eco.2701","title":"Modelling the ecohydrological plasticity in soil hydraulic properties of <i>Sphagnum</i> mosses","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Brandon University; Nipissing University","funders":"Natural Sciences and Engineering Research Council of Canada; Canada Research Chairs","keywords":"Sphagnum; Environmental science; Soil science; Hydrology (agriculture); Peat; Geology; Ecology; Geotechnical engineering; Biology","score_opus":0.01795354440760638,"score_gpt":0.20852038560759548,"score_spread":0.1905668411999891,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4401776277","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99508435,0.000030086545,0.0035593796,0.000027818793,0.0000056218846,0.00001055397,0.00023514958,0.00006849335,0.0009785279],"genre_scores_gemma":[0.99866927,0.000014538775,0.0010158562,0.0000053604967,0.0000013246513,0.000010223201,0.000082788225,0.0000075526077,0.00019317932],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99993277,0.000011569751,0.000003888905,0.000027905859,0.000007855715,0.000016000737],"domain_scores_gemma":[0.9996494,0.00020115644,0.0000559576,0.000029803894,0.00003130229,0.000032274565],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00016961311,0.00028405368,0.00020002491,0.00027766064,0.00018997138,0.00046088657,0.00058746344,0.0007349853,0.0009850144],"category_scores_gemma":[0.00057072955,0.00021864111,0.0004755745,0.00024214556,0.00032722598,0.00040444176,0.00023409408,0.00028631827,0.0001406879],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000060130493,0.000095182775,0.017153148,0.000037174465,0.000030065745,0.000073823925,0.0000392462,0.965551,0.013740794,0.00030812406,0.00013059842,0.0027806351],"study_design_scores_gemma":[0.000008755529,0.000021982803,0.010135272,0.0000026669186,0.0000054453044,0.000013876828,0.00001743716,0.9883537,0.0011837602,0.00011983362,0.00012933067,0.000007898082],"about_ca_topic_score_codex":0.017317045,"about_ca_topic_score_gemma":0.009412817,"teacher_disagreement_score":0.017317045,"about_ca_system_score_codex":0.0007621537,"about_ca_system_score_gemma":0.00044597875,"threshold_uncertainty_score":0.03443253},"labels":[],"label_agreement":null},{"id":"W4402275415","doi":"10.1002/eco.2714","title":"Evaluating the Use of the Penman–Monteith and Priestley–Taylor Algorithms for Modelling Peatland Evapotranspiration Using the Cold Regions Hydrological Model","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Canmore Museum and Geoscience Centre; University of Saskatchewan; University of Waterloo","funders":"Imperial Oil Resources; Natural Sciences and Engineering Research Council of Canada; Global Water Futures; Canada First Research Excellence Fund; Shell Canada; Suncor Energy Incorporated","keywords":"Evapotranspiration; Peat; Hydrology (agriculture); Environmental science; Algorithm; Computer science; Geology; Geography; Ecology; Geotechnical engineering","score_opus":0.20489509201550107,"score_gpt":0.33444122507149127,"score_spread":0.1295461330559902,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4402275415","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9485737,0.00025211144,0.045210045,0.00034034124,0.000068663445,0.0001531296,0.00018680631,0.0005846559,0.0046305303],"genre_scores_gemma":[0.97389436,0.000041157637,0.025292255,0.00005898883,0.000011270288,0.000043388,0.00011281769,0.00006297355,0.0004827088],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9989617,0.0005776043,0.000080404265,0.00015785206,0.00014360291,0.000078839636],"domain_scores_gemma":[0.987318,0.010268302,0.00054978166,0.00043857298,0.0010982645,0.00032717915],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0064304112,0.00087043253,0.0007713858,0.00073873653,0.0007026524,0.0013975438,0.0012625759,0.0015458453,0.0012046559],"category_scores_gemma":[0.011946602,0.000489504,0.00065256865,0.0004071178,0.0006454244,0.001453777,0.0006748886,0.0011003033,0.00018615794],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00026057317,0.0001160543,0.0076244744,0.000023417613,0.00006673997,0.00002328986,0.000034740136,0.9793737,0.0005246387,0.0008517823,0.00023856005,0.0108620785],"study_design_scores_gemma":[0.000011234345,0.0000491108,0.0006540259,0.0000029872792,0.000006417445,0.0000028970135,0.0000075931844,0.99883157,0.00029240156,0.000086018874,0.000051955114,0.000003858401],"about_ca_topic_score_codex":0.067163385,"about_ca_topic_score_gemma":0.044684842,"teacher_disagreement_score":0.067163385,"about_ca_system_score_codex":0.0021745875,"about_ca_system_score_gemma":0.0023090534,"threshold_uncertainty_score":0.13354486},"labels":[],"label_agreement":null},{"id":"W4404386911","doi":"10.1002/eco.2739","title":"Pumping Groundwater to Create Cold‐Water Thermal Refuges in Warming Rivers","year":2024,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Water-Energy-Food Nexus Studies","field":"Environmental Science","cited_by":12,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Dalhousie University","funders":"Natural Sciences and Engineering Research Council of Canada; Geological Society of America","keywords":"Environmental science; Groundwater; Hydrology (agriculture); Water resource management; Geology; Geotechnical engineering","score_opus":0.009391174700981155,"score_gpt":0.21836919871450558,"score_spread":0.20897802401352442,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4404386911","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99886984,0.0000316209,0.00069457764,0.000019951269,0.0000021466724,0.000012605545,0.000013618137,0.0000074791437,0.0003481769],"genre_scores_gemma":[0.9985018,0.000038118724,0.0010707583,0.000013151925,6.037908e-7,0.00000965706,0.0000136246645,0.0000025776078,0.0003497407],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99988234,0.000020347323,0.0000057022844,0.000025304715,0.000021445134,0.00004485391],"domain_scores_gemma":[0.99988496,0.000018527768,0.000027162465,0.000010102474,0.000022621534,0.00003657885],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00022526637,0.00015341077,0.000212622,0.00018728654,0.00053102884,0.0005927088,0.00034429145,0.00015869067,0.0005278428],"category_scores_gemma":[0.00022009961,0.0001199785,0.00023316186,0.00016474893,0.0006848596,0.00026176122,0.0006347758,0.000278285,0.000038818816],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005546394,0.000160778,0.08501016,0.00019860384,0.000059842638,0.0006898391,0.0011049726,0.011055587,0.87781745,0.0009456633,0.00023532327,0.022167178],"study_design_scores_gemma":[0.00012786471,0.0027353703,0.7147154,0.00010255687,0.00018307533,0.0005471158,0.008379862,0.03279375,0.23012693,0.0009760846,0.009181735,0.00013021327],"about_ca_topic_score_codex":0.074733585,"about_ca_topic_score_gemma":0.25023076,"teacher_disagreement_score":0.074733585,"about_ca_system_score_codex":0.0017414322,"about_ca_system_score_gemma":0.0016582467,"threshold_uncertainty_score":0.14859718},"labels":[],"label_agreement":null},{"id":"W4406767905","doi":"10.1002/eco.2759","title":"Detecting Forest‐Wetland Changes in Northwestern Canada's Discontinuous Permafrost Region Using Landsat Trend Analysis","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Climate change and permafrost","field":"Earth and Planetary Sciences","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Government of Northwest Territories; Queen's University; Wilfrid Laurier University; University of Calgary; Trent University","funders":"Natural Sciences and Engineering Research Council of Canada; ArcticNet","keywords":"Permafrost; Wetland; Environmental science; Physical geography; Hydrology (agriculture); Remote sensing; Geology; Geography; Ecology; Oceanography","score_opus":0.020520935906186737,"score_gpt":0.23346432510287,"score_spread":0.21294338919668326,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4406767905","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99417514,0.0001460047,0.00042789118,0.0000349146,0.0000029773255,0.00002860887,0.003148135,0.00005334203,0.0019829709],"genre_scores_gemma":[0.99564016,0.00012364426,0.0012793991,0.000011511264,0.0000015609379,0.000016712667,0.002024702,0.000005567981,0.0008968728],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999864,0.0000060042767,0.000007187117,0.000025653706,0.000056836914,0.000040378774],"domain_scores_gemma":[0.99930763,0.00004080772,0.000087264525,0.000020685417,0.00044360707,0.000099865574],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015660038,0.000254256,0.00015208218,0.0020522703,0.00091574946,0.0007759938,0.00033077938,0.00014164577,0.00091577385],"category_scores_gemma":[0.00054533535,0.00010701291,0.00014777757,0.003282404,0.00022503496,0.0001595852,0.00024532856,0.00015760961,0.00011198704],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":true,"about_ca_topic_consensus":true,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006279941,0.00003678741,0.9671031,0.000028054366,0.000035571247,0.000093009905,0.00040780246,0.0012508482,0.0026533075,0.00008206741,0.0011308191,0.027115792],"study_design_scores_gemma":[0.000002511848,0.0000071227996,0.9961255,0.000008560917,0.000011344358,0.000017378541,0.00063064316,0.0020619745,0.00033219953,0.00001254167,0.000786185,0.000003946844],"about_ca_topic_score_codex":0.9832771,"about_ca_topic_score_gemma":0.9948389,"teacher_disagreement_score":0.016722918,"about_ca_system_score_codex":0.0061370707,"about_ca_system_score_gemma":0.008613059,"threshold_uncertainty_score":0.04452777},"labels":[],"label_agreement":null},{"id":"W4408124298","doi":"10.1002/eco.70003","title":"A Continuous Semi‐nonparametric Isotope‐Based Mixing Model for Multimodal Water Uptake Patterns","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Isotope Analysis in Ecology","field":"Environmental Science","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Saskatchewan","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Mixing (physics); Nonparametric statistics; Environmental science; Isotope; Hydrology (agriculture); Computer science; Geology; Mathematics; Statistics; Physics; Geotechnical engineering","score_opus":0.009235725997152725,"score_gpt":0.2458096967605114,"score_spread":0.23657397076335868,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4408124298","genre_codex":"methods","genre_gemma":"methods","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"methods","genre_consensus":"methods","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.20997535,0.00009283641,0.78744334,0.00024970013,0.00001414023,0.000068900015,0.00023119687,0.0002754445,0.0016490634],"genre_scores_gemma":[0.97927654,0.000038143444,0.018417083,0.000033086733,0.000008917973,0.00008295617,0.00011941324,0.00002282041,0.0020011684],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9995522,0.00015552365,0.000017998207,0.00015801331,0.000059141126,0.000057147423],"domain_scores_gemma":[0.9986922,0.0008696615,0.00021048741,0.00007329212,0.00011544916,0.000038862723],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0020883589,0.0006035724,0.00066285057,0.0005632954,0.00029334935,0.00090232975,0.0015852464,0.0010872014,0.0014269154],"category_scores_gemma":[0.0031377503,0.00050593447,0.0008819052,0.00041924327,0.001015327,0.0010368332,0.00087263866,0.0009336451,0.00020169876],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00006517601,0.000035832163,0.0024736011,0.000027758617,0.00004028461,0.00008089216,0.000063535015,0.97620755,0.0029202662,0.011583892,0.00014515722,0.0063561327],"study_design_scores_gemma":[0.0000025588397,0.00000701521,0.00027570646,8.856313e-7,0.0000028085835,0.000006612441,0.0000027784895,0.9985619,0.000108669934,0.0009858134,0.000040972212,0.0000042816146],"about_ca_topic_score_codex":0.008322694,"about_ca_topic_score_gemma":0.0048345025,"teacher_disagreement_score":0.008322694,"about_ca_system_score_codex":0.0008923805,"about_ca_system_score_gemma":0.00052960566,"threshold_uncertainty_score":0.016548514},"labels":[],"label_agreement":null},{"id":"W4408307931","doi":"10.1002/eco.70012","title":"Enhancing Representativeness of Eddy Covariance Evapotranspiration With Remote Sensing and In Situ Data: A Case Study in the Brazilian Cerrado","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"Conselho Nacional de Desenvolvimento Científico e Tecnológico; Coordenação de Aperfeiçoamento de Pessoal de Nível Superior; Universidade de São Paulo; Fundação de Amparo à Pesquisa do Estado de São Paulo","keywords":"Eddy covariance; Representativeness heuristic; Evapotranspiration; Environmental science; In situ; Covariance; Remote sensing; Hydrology (agriculture); Meteorology; Geography; Geology; Statistics; Mathematics; Ecosystem; Ecology","score_opus":0.016127383086011485,"score_gpt":0.277704002559879,"score_spread":0.2615766194738675,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4408307931","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9962054,0.00013058505,0.0024464452,0.000108952336,0.0000061181304,0.000019662875,0.00018239733,0.000036746576,0.0008636909],"genre_scores_gemma":[0.99630284,0.000055139353,0.0033143503,0.000010437115,0.0000047000485,0.000007721649,0.00017573003,0.000012851197,0.000116096744],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9994161,0.0002112719,0.00004524379,0.00013246361,0.000108931774,0.00008602417],"domain_scores_gemma":[0.99851865,0.0007311186,0.00017469095,0.000174204,0.00032186433,0.00007946214],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001432944,0.00048450398,0.00047834995,0.0008192042,0.0004696113,0.0009505892,0.0008394319,0.0006567605,0.00034272383],"category_scores_gemma":[0.0030914196,0.0002104129,0.00051153114,0.0015171632,0.00034112477,0.00060401036,0.0005351038,0.00039456657,0.000056018634],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0005693069,0.0012700453,0.6836797,0.0006041861,0.0005400377,0.008554447,0.002853279,0.16745402,0.030643975,0.002226921,0.0017695591,0.099834464],"study_design_scores_gemma":[0.00006444776,0.00018756381,0.5761425,0.000082340695,0.00020109632,0.00068781787,0.0030539047,0.40679985,0.008007738,0.00063614396,0.004062492,0.00007409648],"about_ca_topic_score_codex":0.13005336,"about_ca_topic_score_gemma":0.16958465,"teacher_disagreement_score":0.13005336,"about_ca_system_score_codex":0.0012595706,"about_ca_system_score_gemma":0.0005533772,"threshold_uncertainty_score":0.25859267},"labels":[],"label_agreement":null},{"id":"W4408577125","doi":"10.1002/eco.70022","title":"Evapotranspiration Dynamics During the Ecosystem Development of a Constructed Upland‐Fen Watershed","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; Global Water Futures; Canada First Research Excellence Fund; University of Waterloo; Suncor Energy Incorporated","keywords":"Evapotranspiration; Environmental science; Watershed; Hydrology (agriculture); Ecosystem; Wetland; Ecology; Geology","score_opus":0.0034864972335217612,"score_gpt":0.19149967499429002,"score_spread":0.18801317776076826,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4408577125","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9998785,0.000003281002,0.00002043294,0.0000012735974,1.3198778e-7,0.0000011711164,0.000038462593,0.0000010283576,0.000055609165],"genre_scores_gemma":[0.9997625,0.000004399038,0.000054907458,0.0000010609509,2.4016015e-7,0.000003250658,0.00009698376,4.0691725e-7,0.00007624346],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999411,0.0000095059395,0.000003815116,0.00001788833,0.000009674671,0.000017964887],"domain_scores_gemma":[0.9998467,0.000024806204,0.000045018245,0.0000083478535,0.000033987842,0.000041046806],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021439452,0.00011519923,0.00013648291,0.00033522677,0.00027460256,0.00041001145,0.0002246538,0.00016962024,0.0003998747],"category_scores_gemma":[0.00030112808,0.00005484297,0.000120794,0.00034602408,0.00024463926,0.00020174186,0.00028475322,0.0001409359,0.000051326813],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0004082996,0.00033126213,0.9302416,0.00002679445,0.00004727236,0.00087612984,0.00088758033,0.004055199,0.054291457,0.00022105465,0.00014308191,0.0084703695],"study_design_scores_gemma":[0.0000022136496,0.00009145084,0.99639446,0.0000018320798,0.0000051122747,0.000038977185,0.0002786502,0.002008152,0.0010020466,0.000018816148,0.00015450068,0.000003689756],"about_ca_topic_score_codex":0.015905555,"about_ca_topic_score_gemma":0.030406361,"teacher_disagreement_score":0.015905555,"about_ca_system_score_codex":0.0010279327,"about_ca_system_score_gemma":0.0003687153,"threshold_uncertainty_score":0.031625986},"labels":[],"label_agreement":null},{"id":"W4409439793","doi":"10.1002/eco.70025","title":"Mulching During Boreal Resource Development Alters Near‐Surface Hydrophysical Properties and Triggers Episodic Methane Emissions in Peatland Soils","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Waterloo","funders":"Environment and Climate Change Canada","keywords":"Peat; Environmental science; Boreal; Methane; Mulch; Soil water; Permafrost; Hydrology (agriculture); Surface runoff; Resource (disambiguation); Soil science; Geology; Ecology; Oceanography","score_opus":0.009438862691859774,"score_gpt":0.21742515674384028,"score_spread":0.2079862940519805,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4409439793","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997478,0.000017677334,0.000051574913,0.0000034811023,9.067844e-7,0.000001783244,0.000059291524,0.000003969232,0.00011341607],"genre_scores_gemma":[0.99968493,0.000012723875,0.00007886602,0.0000056083513,6.9210745e-7,0.0000032601415,0.00011047786,0.000001729989,0.000101700236],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999033,0.000010033911,0.000005490291,0.00002827118,0.000015506155,0.0000373706],"domain_scores_gemma":[0.99977034,0.000023227169,0.00008540664,0.000013353182,0.000031351432,0.00007626027],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00012729404,0.00018288151,0.00023499281,0.00024386353,0.000352819,0.00035449077,0.00020227885,0.00016275905,0.0004553083],"category_scores_gemma":[0.00018056507,0.00014611328,0.00016244418,0.00015319764,0.0003333595,0.0002014324,0.00019400791,0.00018914863,0.00006043507],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00091016514,0.00018576982,0.33838657,0.00004084692,0.000049422182,0.00025147546,0.00043325662,0.0002244649,0.65474457,0.00003636699,0.00012303745,0.0046141003],"study_design_scores_gemma":[9.2858136e-7,0.000048136008,0.9977307,8.6009817e-7,0.0000030744163,0.0000192674,0.000095505384,0.000116782525,0.0019266501,0.0000050610543,0.000051643336,0.0000015003998],"about_ca_topic_score_codex":0.031018628,"about_ca_topic_score_gemma":0.074815825,"teacher_disagreement_score":0.031018628,"about_ca_system_score_codex":0.0005227689,"about_ca_system_score_gemma":0.00026606358,"threshold_uncertainty_score":0.061676145},"labels":[],"label_agreement":null},{"id":"W4411731975","doi":"10.1002/eco.70052","title":"Fog Precipitation Plays a Significant Role in Providing Moisture to the Caspian High Latitude Forests of Northern Iran","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fire effects on ecosystems","field":"Environmental Science","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Thompson Rivers University","funders":"Iran National Science Foundation; National Natural Science Foundation of China","keywords":"Precipitation; Environmental science; Moisture; Latitude; High latitude; Low latitude; Physical geography; Climatology; Geology; Geography; Meteorology","score_opus":0.004429045308825384,"score_gpt":0.2105725417877399,"score_spread":0.20614349647891453,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4411731975","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9989631,0.00008135674,0.000052877123,0.000022943543,0.000002505046,0.0000023690989,0.00008737074,0.0000063027205,0.00078111707],"genre_scores_gemma":[0.9998062,0.000028994551,0.000055699194,0.000004410749,0.0000032401963,9.4254443e-7,0.00004531894,7.017313e-7,0.000054420492],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999244,0.000009035471,0.0000053684416,0.000013241557,0.000017019107,0.000030851148],"domain_scores_gemma":[0.9998884,0.000015766607,0.000043791035,0.0000057192087,0.000029929923,0.000016418711],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014160971,0.00017321979,0.00015717407,0.00053851097,0.0004623501,0.0004579522,0.0001743439,0.00012203474,0.0008389937],"category_scores_gemma":[0.00021931384,0.00007695903,0.00012221957,0.00045030678,0.00022666095,0.00022140772,0.00019492758,0.00012308081,0.00007208848],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000100107914,0.000046634133,0.96849614,0.0000413506,0.000040720624,0.00037379802,0.0004759967,0.0010629187,0.0062224376,0.00015641743,0.0005566263,0.022426898],"study_design_scores_gemma":[0.0000021065098,0.000009643565,0.99877185,0.0000029647651,0.000006720682,0.000041981035,0.00029903476,0.0004240889,0.0001425363,0.000031027845,0.0002661959,0.000001736556],"about_ca_topic_score_codex":0.03027511,"about_ca_topic_score_gemma":0.04692958,"teacher_disagreement_score":0.03027511,"about_ca_system_score_codex":0.00043017595,"about_ca_system_score_gemma":0.00039538534,"threshold_uncertainty_score":0.06019777},"labels":[],"label_agreement":null},{"id":"W4412966985","doi":"10.1002/eco.70075","title":"Ecohydrological Drivers of Boreal Shield Peatland Fire Refugia","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":4,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Nipissing University; Simon Fraser University; University of Waterloo; McMaster University","funders":"","keywords":"Peat; Sphagnum; Boreal; Environmental science; Bryophyte; Water table; Ecohydrology; Vegetation (pathology); Subarctic climate; Mire; Ecology; Climate change; Growing season; Black spruce; Ecosystem; Fire regime; Hydrology (agriculture); Taiga; Geology; Groundwater; Biology","score_opus":0.0050053305157866735,"score_gpt":0.22237587629571684,"score_spread":0.21737054577993017,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4412966985","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99982065,0.000015747326,0.00003168389,0.000003600488,5.610538e-7,9.74357e-7,0.000043592907,0.0000014255866,0.00008173716],"genre_scores_gemma":[0.999864,0.00000840716,0.00004017447,0.0000019456722,9.699656e-7,0.0000010031598,0.000055537763,5.957292e-7,0.00002737203],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99986076,0.000035186113,0.000011858965,0.000035096866,0.000019045112,0.000038010407],"domain_scores_gemma":[0.99922264,0.00012486814,0.00037125012,0.00004490202,0.00007994732,0.00015642033],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037659498,0.00013111703,0.00017459477,0.0005987898,0.00025393162,0.00034289394,0.00014776814,0.00013324468,0.0006893914],"category_scores_gemma":[0.0006415818,0.00008699946,0.00017175013,0.00035555943,0.00024411269,0.00017812978,0.00024822677,0.00013899776,0.0000667768],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000042280008,0.00001558831,0.99654466,0.0000039947554,0.000018313907,0.000044770106,0.000096383206,0.00011351757,0.0020148556,0.00002240997,0.00002350494,0.0010597382],"study_design_scores_gemma":[4.033191e-7,0.000009017178,0.9996488,7.81399e-7,0.0000018393804,0.000031727963,0.00009473043,0.00013578853,0.000041294534,0.000006722421,0.000028020775,9.243201e-7],"about_ca_topic_score_codex":0.010516326,"about_ca_topic_score_gemma":0.0369659,"teacher_disagreement_score":0.010516326,"about_ca_system_score_codex":0.00023290214,"about_ca_system_score_gemma":0.00016875571,"threshold_uncertainty_score":0.020910203},"labels":[],"label_agreement":null},{"id":"W4413339598","doi":"10.1002/eco.70074","title":"Incorporating the Interaction of Flow Into Invertebrate Responses to Fine Sediment Deposition in Temperate Rivers","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of New Brunswick","funders":"UK Research and Innovation","keywords":"Deposition (geology); Temperate climate; Environmental science; Invertebrate; Sediment; Hydrology (agriculture); Flow (mathematics); Geology; Ecology; Geomorphology; Geotechnical engineering; Biology","score_opus":0.006729424829160843,"score_gpt":0.23432441063438075,"score_spread":0.22759498580521992,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4413339598","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99968493,0.00002706522,0.00017902255,0.000006645737,6.8238717e-7,0.000002464045,0.000028969587,0.0000036581243,0.00006665244],"genre_scores_gemma":[0.99958855,0.000016024069,0.00020629924,0.000008937648,0.0000010364546,0.000005400596,0.00005158027,0.0000018379229,0.00012039114],"study_design_codex":"observational","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99974126,0.00012545938,0.000015413272,0.00006426031,0.000016465512,0.00003716478],"domain_scores_gemma":[0.9991897,0.00044804486,0.0001387515,0.00003358856,0.000055875887,0.00013402766],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00075729005,0.00023565654,0.0003535407,0.0003400262,0.0002425418,0.0007445159,0.00020132717,0.00030354992,0.00069121766],"category_scores_gemma":[0.0011806418,0.00021888726,0.00047141316,0.00019748815,0.00029465946,0.0003299394,0.00042357793,0.00023994158,0.000070806935],"study_design_candidate":"bench_or_experimental","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0006469106,0.00016023632,0.96296746,0.000059705846,0.00026104617,0.00011453134,0.00051119324,0.004923009,0.0252762,0.0000957429,0.00007601805,0.00490794],"study_design_scores_gemma":[0.0000037286754,0.00015173701,0.9953236,0.0000035680391,0.000025252892,0.000011769652,0.000109231725,0.0040420196,0.00022667598,0.00004033465,0.00005719435,0.000004860471],"about_ca_topic_score_codex":0.016914818,"about_ca_topic_score_gemma":0.035367977,"teacher_disagreement_score":0.016914818,"about_ca_system_score_codex":0.0005842288,"about_ca_system_score_gemma":0.00031740166,"threshold_uncertainty_score":0.033632696},"labels":[],"label_agreement":null},{"id":"W4413931060","doi":"10.1002/eco.70102","title":"Seismic Lines Are Associated With Enhanced Ground Layer Evapotranspiration in Peatlands","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Athabasca University; University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; University of Waterloo","keywords":"Evapotranspiration; Peat; Environmental science; Hydrology (agriculture); Geology; Layer (electronics); Geography; Geotechnical engineering; Ecology","score_opus":0.008272417612199571,"score_gpt":0.2262954783345794,"score_spread":0.2180230607223798,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4413931060","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9997993,0.00001177233,0.0000631087,0.0000035422165,3.857198e-7,7.2520754e-7,0.000029609526,0.0000025152567,0.00008903004],"genre_scores_gemma":[0.99975246,0.000012672491,0.00007766989,0.0000019186173,5.621033e-7,9.2738634e-7,0.00005274528,0.0000011222318,0.000099889454],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999027,0.000012275873,0.00000667639,0.000021797878,0.000024393985,0.00003206975],"domain_scores_gemma":[0.99945873,0.00007341514,0.00027046932,0.000018441775,0.00008615427,0.00009279799],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00014116817,0.00015406325,0.00014609293,0.00057047716,0.00030843273,0.00049756124,0.00018838172,0.00015116455,0.0010168441],"category_scores_gemma":[0.00039028394,0.00014240632,0.00013232835,0.00057786616,0.00031509245,0.0001258021,0.00019854147,0.00014840795,0.000077725475],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.0000987722,0.000035131197,0.9881622,0.000011415658,0.000029321263,0.00019574996,0.00031375466,0.00031052454,0.008028704,0.000044202272,0.000050675742,0.0027196014],"study_design_scores_gemma":[3.9624882e-7,0.000005115881,0.9994098,0.000001216428,0.0000028545292,0.00002822725,0.00019039745,0.00020754115,0.00011332692,0.000011293037,0.000028915882,9.0507496e-7],"about_ca_topic_score_codex":0.18219694,"about_ca_topic_score_gemma":0.43189818,"teacher_disagreement_score":0.18219694,"about_ca_system_score_codex":0.0008731505,"about_ca_system_score_gemma":0.00061660475,"threshold_uncertainty_score":0.36227286},"labels":[],"label_agreement":null},{"id":"W4414688183","doi":"10.1002/eco.70112","title":"Does Local Bed Shear Stress Predict the Occurrence of Freshwater Mussels?","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Aquatic Invertebrate Ecology and Behavior","field":"Environmental Science","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Fisheries and Oceans Canada; University of Guelph","funders":"Fisheries and Oceans Canada; Natural Sciences and Engineering Research Council of Canada; Ministry of Environment; Ministry of Natural Resources","keywords":"Transect; Quadrat; Mussel; Sediment; Juvenile; Cobble; Hydrology (agriculture); Range (aeronautics)","score_opus":0.004929504887729137,"score_gpt":0.22035127136082733,"score_spread":0.2154217664730982,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4414688183","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99973315,0.000024344767,0.00004614026,0.0000051612315,4.9577045e-7,8.016281e-7,0.00006425109,0.000002069899,0.0001235358],"genre_scores_gemma":[0.9997321,0.000013717692,0.000029899684,0.0000019887748,5.8739766e-7,8.751382e-7,0.00006698064,5.7663107e-7,0.0001532974],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99990773,0.000013777532,0.000008094514,0.000032772998,0.000017375922,0.000020238898],"domain_scores_gemma":[0.99946684,0.000102729624,0.00019874853,0.000032418884,0.000074807205,0.00012449361],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020287279,0.00015924608,0.00016780867,0.0003695773,0.0003302777,0.00044954786,0.00019782493,0.0002398318,0.0015620101],"category_scores_gemma":[0.0009295917,0.00022306581,0.00016028242,0.00036150956,0.00034679854,0.00018018617,0.00019750113,0.00012583197,0.00023778871],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000019797086,0.0000025871277,0.9989242,0.000002164287,0.000008777977,0.000013449832,0.000047409467,0.00007090149,0.0003887335,0.0000032009218,0.000015642096,0.0005032363],"study_design_scores_gemma":[5.2474155e-7,0.000008571009,0.9996679,0.0000011200755,0.0000021382693,0.000013618856,0.00008052282,0.00016558981,0.000029808027,0.0000038822436,0.000025506539,9.136299e-7],"about_ca_topic_score_codex":0.09822723,"about_ca_topic_score_gemma":0.2820003,"teacher_disagreement_score":0.09822723,"about_ca_system_score_codex":0.0004923602,"about_ca_system_score_gemma":0.00027013253,"threshold_uncertainty_score":0.19531095},"labels":[],"label_agreement":null},{"id":"W4415365891","doi":"10.1002/eco.70103","title":"Stable Isotope‐Inferred Hydrology of Ponds Created by the Mount St. Helens Eruption","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Groundwater and Isotope Geochemistry","field":"Earth and Planetary Sciences","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Regina","funders":"Canada Foundation for Innovation; Natural Sciences and Engineering Research Council of Canada; Portland State University","keywords":"Hydrology (agriculture); Spring (device); Water balance; Snow; Precipitation; Drainage basin; Groundwater; Ecosystem; Structural basin; Surface water","score_opus":0.005847391928486243,"score_gpt":0.20476672023757655,"score_spread":0.19891932830909032,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4415365891","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99913883,0.000017636128,0.00014824416,0.000007938317,0.0000015374887,0.0000023066486,0.00033002105,0.000019085795,0.00033448494],"genre_scores_gemma":[0.9994711,0.000014185465,0.00011702675,0.0000031813715,0.0000026085875,0.0000023597522,0.00028513663,0.0000029131859,0.0001015067],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99994147,0.0000085737465,0.0000037672266,0.000019274692,0.000014299905,0.00001254422],"domain_scores_gemma":[0.99975413,0.000048994043,0.00009760388,0.000018779625,0.000043075957,0.00003743982],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023079372,0.00011974991,0.00014572564,0.00060326303,0.00021835759,0.00040631308,0.00013060294,0.00018026796,0.0010461415],"category_scores_gemma":[0.0004316307,0.000105167106,0.0001959329,0.00048046804,0.0002728582,0.0002884307,0.00028769355,0.00012560097,0.00013780841],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00007933316,0.000023172146,0.9755375,0.00002183396,0.00004600077,0.00017405732,0.00019660292,0.003292952,0.014426248,0.00010119826,0.00037599698,0.005725101],"study_design_scores_gemma":[0.0000030127842,0.00001038763,0.99607545,0.0000019659158,0.000005956053,0.00002712856,0.000061177205,0.0031310425,0.00042643663,0.000029441513,0.00022564735,0.0000024233025],"about_ca_topic_score_codex":0.006089695,"about_ca_topic_score_gemma":0.013843728,"teacher_disagreement_score":0.006089695,"about_ca_system_score_codex":0.00036821543,"about_ca_system_score_gemma":0.00012654539,"threshold_uncertainty_score":0.012108505},"labels":[],"label_agreement":null},{"id":"W4415912706","doi":"10.1002/eco.70121","title":"Performance of Hydraulic Models Compared to Geomorphological and Botanical Approaches to Delineate the Ordinary High Water Mark for Small Rivers","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Hydrology and Sediment Transport Processes","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Université Laval; Institut National de la Recherche Scientifique","funders":"","keywords":"Floodplain; Flood myth; Hydrology (agriculture); Vegetation (pathology); Shore; Watershed; Land use; Ravine","score_opus":0.047253768637934804,"score_gpt":0.2151835916292493,"score_spread":0.16792982299131448,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4415912706","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9503516,0.0001788559,0.04356472,0.00020216472,0.00006067024,0.00010369032,0.0006240631,0.0015722712,0.0033418585],"genre_scores_gemma":[0.9914561,0.000028155619,0.0077292062,0.000013610817,0.0000057023335,0.00003047032,0.0002684483,0.00003493699,0.0004334443],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9994487,0.00025878887,0.000032718923,0.00014320236,0.0000592817,0.000057146735],"domain_scores_gemma":[0.997232,0.0018338123,0.00016807989,0.0001234241,0.00044665023,0.00019601118],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0020062546,0.00071848155,0.0005022666,0.0015072655,0.0004312628,0.0015523051,0.00076941645,0.0006251417,0.0018983361],"category_scores_gemma":[0.0042979266,0.00026920592,0.0005145008,0.0008672647,0.0003366245,0.0008428704,0.00059777615,0.00030667288,0.0004135246],"study_design_candidate":"simulation_or_modeling","study_design_consensus":"simulation_or_modeling","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00084948813,0.000386777,0.08742397,0.0000692752,0.00015698628,0.00009263224,0.0002774557,0.82776004,0.0024009396,0.00069863896,0.0009627527,0.07892109],"study_design_scores_gemma":[0.000021121834,0.00005122608,0.011153148,0.000009282238,0.000010816926,0.000009542408,0.00012711762,0.9878373,0.0004127637,0.00017609025,0.00017649443,0.00001510817],"about_ca_topic_score_codex":0.09769811,"about_ca_topic_score_gemma":0.09429703,"teacher_disagreement_score":0.09769811,"about_ca_system_score_codex":0.0018130911,"about_ca_system_score_gemma":0.0021186885,"threshold_uncertainty_score":0.19425887},"labels":[],"label_agreement":null},{"id":"W4416731195","doi":"10.1002/eco.70122","title":"Water, Wildlife and the World: A Global Synthesis of Trends in Wildlife Ecohydrology Research","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Environmental DNA in Biodiversity Studies","field":"Environmental Science","cited_by":1,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"Natural Sciences and Engineering Research Council of Canada; University of Waterloo","keywords":"Ecohydrology; Wildlife; Ecosystem; Biodiversity; Population; Wildlife conservation; Wildlife management","score_opus":0.015246013838394775,"score_gpt":0.28005425401561745,"score_spread":0.26480824017722265,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4416731195","genre_codex":"review","genre_gemma":"review","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"review","genre_consensus":"review","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.003096511,0.9882393,0.00026328096,0.0043046875,0.00045806056,0.000028071037,0.0025350556,0.000018594938,0.0010564153],"genre_scores_gemma":[0.016320936,0.9797967,0.00096183066,0.001100461,0.000260679,0.00007452577,0.0012667333,0.0000143750085,0.00020375698],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.99722975,0.0007539716,0.0008866397,0.00045881965,0.0005082212,0.00016268532],"domain_scores_gemma":[0.9738003,0.018293709,0.003566386,0.00046163157,0.003317996,0.00055998686],"candidate_categories":["bibliometrics"],"consensus_categories":[],"category_scores_codex":[0.006822362,0.00090525456,0.0018214987,0.03198002,0.0005260141,0.0040143025,0.0006248513,0.0012231458,0.005446193],"category_scores_gemma":[0.014219826,0.0006146195,0.0016608364,0.06027888,0.001083931,0.004753912,0.0024687694,0.0013793822,0.0004975074],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00018130182,0.00004098232,0.01900723,0.2435325,0.001999686,0.0003031066,0.0054471716,0.00095680734,0.0007922481,0.008195707,0.050817598,0.6687257],"study_design_scores_gemma":[0.000030265333,0.00016834754,0.11067784,0.39527643,0.0029825908,0.0006311793,0.008832446,0.00037636553,0.00025682795,0.0048831473,0.4757929,0.00009173911],"about_ca_topic_score_codex":0.013009729,"about_ca_topic_score_gemma":0.025179116,"teacher_disagreement_score":0.96801996,"about_ca_system_score_codex":0.003340439,"about_ca_system_score_gemma":0.007126727,"threshold_uncertainty_score":0.03608054},"labels":[],"label_agreement":null},{"id":"W4416747666","doi":"10.1002/eco.70144","title":"An Experimental Test of Hydropower Entrainment Risk for Subadult Sea‐Run Brown Trout (Aka Blenkje; <scp> <i>Salmo trutta</i> </scp> )","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Fish Ecology and Management Studies","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Ocean Tracking Network; Dalhousie University","funders":"Norges Forskningsråd","keywords":"Hydropower; Entrainment (biomusicology); Brown trout; Trout; Fish <Actinopterygii>; Freshwater fish; Habitat; Hydrology (agriculture)","score_opus":0.004397670086248939,"score_gpt":0.23044747894725323,"score_spread":0.2260498088610043,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4416747666","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99963665,0.000005535602,0.000110725035,0.000008917065,0.000008324518,0.00003666503,0.000060143575,0.000005706976,0.00012730963],"genre_scores_gemma":[0.9959353,0.000021519554,0.00056082295,0.00004737484,0.000010032386,0.00041493558,0.0002562325,0.0000071830727,0.002746412],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9995629,0.00005124906,0.000037686117,0.00015315354,0.00008834412,0.00010671305],"domain_scores_gemma":[0.99876714,0.0001847941,0.00033625725,0.00012199268,0.00015539645,0.0004345216],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000419903,0.00048249637,0.00031328446,0.0003781592,0.0004089532,0.0003775762,0.0004563509,0.0006094545,0.0026657574],"category_scores_gemma":[0.0005067584,0.00033614365,0.00052429765,0.00013130571,0.00070001197,0.00036095668,0.00052779453,0.0014259069,0.00037685374],"study_design_candidate":"bench_or_experimental","study_design_consensus":"bench_or_experimental","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.01618772,0.023052583,0.10861492,0.00012286071,0.00016439625,0.00042537184,0.0012587435,0.0010532619,0.84050244,0.00026049704,0.00031936448,0.008037744],"study_design_scores_gemma":[0.0005629714,0.2743934,0.51936644,0.000033100256,0.00023232939,0.00019228608,0.0015412278,0.0058292216,0.19631952,0.000238648,0.001195534,0.00009535806],"about_ca_topic_score_codex":0.003613178,"about_ca_topic_score_gemma":0.0060293083,"teacher_disagreement_score":0.003613178,"about_ca_system_score_codex":0.0006692618,"about_ca_system_score_gemma":0.00049022964,"threshold_uncertainty_score":0.008917868},"labels":[],"label_agreement":null},{"id":"W4417222265","doi":"10.1002/eco.70150","title":"Beaver Damming Alters Sedge Phenology Through Water Table and Temperature Feedbacks in a Rocky Mountain Peatland","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Ecology and biodiversity studies","field":"Environmental Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"University of Alberta; Global Institute for Water Security","funders":"University of Northern British Columbia; Natural Sciences and Engineering Research Council of Canada; Hakai Institute; Global Water Futures; Alberta Innovates; Canada First Research Excellence Fund","keywords":"Beaver; Peat; Phenology; Water table; Hydrology (agriculture); Ecosystem; Growing season; Table (database)","score_opus":0.004105527543137215,"score_gpt":0.19968169985467057,"score_spread":0.19557617231153335,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4417222265","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.99967146,0.000011426216,0.000078380064,0.0000059067993,6.1471655e-7,0.0000014825883,0.00006148432,0.000007801557,0.00016149726],"genre_scores_gemma":[0.99954575,0.000012263148,0.0001632676,0.0000075807357,3.005023e-7,0.0000022171928,0.00007489949,0.000003499256,0.00019001591],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99994576,0.0000049293026,0.0000012251014,0.000015098288,0.0000095463665,0.00002346014],"domain_scores_gemma":[0.9999044,0.000009933295,0.000017091113,0.0000057524594,0.000025199743,0.00003775231],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008067708,0.00012583473,0.00014926045,0.0002103852,0.00041210456,0.0003057693,0.00019495287,0.00009958273,0.0007612431],"category_scores_gemma":[0.00016864455,0.00008871048,0.0001091814,0.0001789063,0.00027788786,0.00012669341,0.0002069676,0.00015881071,0.000058916623],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00036016927,0.00014803492,0.6574815,0.000052846433,0.00010157016,0.00029091485,0.0012803257,0.0021846513,0.32130525,0.0001975602,0.00072271965,0.015874417],"study_design_scores_gemma":[0.0000012575399,0.000021139507,0.9976446,0.0000020197954,0.0000061378705,0.000018261022,0.00026959402,0.00090117624,0.0008514506,0.000015726442,0.00026489518,0.000003740123],"about_ca_topic_score_codex":0.39572316,"about_ca_topic_score_gemma":0.68950367,"teacher_disagreement_score":0.39572316,"about_ca_system_score_codex":0.0013081764,"about_ca_system_score_gemma":0.0008844201,"threshold_uncertainty_score":0.7868396},"labels":[],"label_agreement":null},{"id":"W4417451854","doi":"10.1002/eco.70158","title":"Hydrological Feedbacks in Northern Peatlands 2: Peat Depth as a Control on Peatland Resilience","year":2025,"lang":"en","type":"article","venue":"Ecohydrology","topic":"Peatlands and Wetlands Ecology","field":"Environmental Science","cited_by":3,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo; McMaster University","funders":"Global Water Futures; Natural Sciences and Engineering Research Council of Canada; Canada Research Chairs; Canada Foundation for Innovation","keywords":"Peat; Ecohydrology; Hydrology (agriculture); Climate change; Vegetation (pathology); Ecosystem","score_opus":0.0046326708400571594,"score_gpt":0.2304577237972344,"score_spread":0.22582505295717722,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4417451854","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.9906765,0.0020613342,0.0030481603,0.00037678346,0.00002340246,0.000008106197,0.00016405583,0.000093327886,0.0035482813],"genre_scores_gemma":[0.99921787,0.00026831674,0.00021534682,0.000022495213,0.000012911263,0.0000016205621,0.000024075174,0.000006635901,0.00023067302],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9999181,0.000020096742,0.000006458403,0.000018341936,0.000016089496,0.000020914771],"domain_scores_gemma":[0.99959415,0.00014177413,0.00013186916,0.000017377628,0.000048075482,0.000066799876],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00040802837,0.00020908476,0.00023415904,0.000433863,0.00022229846,0.0006550221,0.00016284196,0.000253494,0.0023101422],"category_scores_gemma":[0.0007155249,0.00009967089,0.00019742036,0.0002885649,0.00064305647,0.0006978525,0.0006722503,0.00026522978,0.00012063675],"study_design_candidate":"observational","study_design_consensus":"observational","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00054805895,0.00020284641,0.4761018,0.0015385557,0.0004334391,0.0013371265,0.0023778141,0.069788724,0.27927762,0.03275333,0.0029363262,0.1327043],"study_design_scores_gemma":[0.000010964726,0.00015558575,0.9481516,0.000100342724,0.0000903739,0.00022708319,0.0009873842,0.02090542,0.0062588113,0.01741155,0.0056400658,0.000060835293],"about_ca_topic_score_codex":0.0044368077,"about_ca_topic_score_gemma":0.0057456354,"teacher_disagreement_score":0.0044368077,"about_ca_system_score_codex":0.0006483902,"about_ca_system_score_gemma":0.00033231426,"threshold_uncertainty_score":0.008821964},"labels":[],"label_agreement":null}]}