{"meta":{"query_hash":"3aead00da5bb","filters":{"venue":"Journal of Plant Ecology"},"cohort_total":85,"direct_labels_cover":0,"predictions_cover":85,"exported":85,"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/3aead00da5bb","api":"https://metacan.xera.ac/api/v1/cohort?venue=Journal+of+Plant+Ecology"},"results":[{"id":"W1981857763","doi":"10.1093/jpe/rtu029","title":"Stand history is more important than climate in controlling red maple (<i>Acer rubrum</i>L.) growth at its northern distribution limit in western Quebec, Canada","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","cited_by":39,"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 du Québec en Abitibi-Témiscamingue","funders":"","keywords":"Maple; Transect; Canopy; Climate change; Latitude; Aceraceae; Ecology; Population; Growth rate; Environmental science; Geography; Physical geography; Biology; Demography; Mathematics","score_opus":0.009879038340942056,"score_gpt":0.19093236838890898,"score_spread":0.18105333004796692,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W1981857763","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":[0.99772364,0.00016165053,0.00013835673,0.00008933391,0.0000028155757,0.000005830343,0.0007101762,0.000012881496,0.0011552197],"genre_scores_gemma":[0.99888915,0.00006397402,0.0001513144,0.000028328017,0.0000018771458,0.000004153219,0.00034536535,0.0000037382697,0.00051215955],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99980396,0.00001974563,0.000007340293,0.00005957065,0.000043837852,0.00006544653],"domain_scores_gemma":[0.9989568,0.00011996583,0.00018452363,0.00003289036,0.00046636752,0.00023936178],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036269307,0.00022571809,0.00019705646,0.0005457191,0.00090903824,0.0006775161,0.0005088036,0.00017193166,0.0012154474],"category_scores_gemma":[0.00065893546,0.00010569895,0.00016848849,0.0007143462,0.00040024292,0.00023539737,0.0002289328,0.00020550127,0.00012769597],"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":[0.000046640387,0.000024895024,0.9861407,0.00001525378,0.00003202287,0.0000845613,0.0004719177,0.0007864575,0.0041796654,0.00008903533,0.0007558875,0.0073730364],"study_design_scores_gemma":[0.0000015007803,0.0000045737415,0.9985844,0.000004690424,0.0000051317847,0.000011347054,0.00026164443,0.00062299566,0.000081337064,0.000009520558,0.00040933615,0.0000035286625],"about_ca_topic_score_codex":0.9834109,"about_ca_topic_score_gemma":0.99539965,"teacher_disagreement_score":0.016589105,"about_ca_system_score_codex":0.008717357,"about_ca_system_score_gemma":0.005440346,"threshold_uncertainty_score":0.06324917},"labels":[],"label_agreement":null},{"id":"W2000199950","doi":"10.1093/jpe/rtu041","title":"Historic distribution and driving factors of human-caused fires in the Chinese boreal forest between 1972 and 2005","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Fire effects on ecosystems","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":"University of British Columbia","funders":"","keywords":"Taiga; Distribution (mathematics); Boreal; Geography; Ecology; Environmental science; Physical geography; Forestry; Agroforestry; Biology; Mathematics","score_opus":0.006347877132686354,"score_gpt":0.21689982402957692,"score_spread":0.21055194689689055,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2000199950","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":[0.9990854,0.00013243279,0.000043764634,0.0000122854135,0.0000024758956,0.00000227572,0.00038786483,0.0000031622612,0.00033029937],"genre_scores_gemma":[0.9993332,0.00005871695,0.000029234967,0.0000034697705,0.0000030514154,0.0000022117888,0.00044112597,5.462431e-7,0.00012847215],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99989474,0.000009620261,0.00001586626,0.00003078463,0.000020573549,0.000028357834],"domain_scores_gemma":[0.9995752,0.00004346163,0.00019317136,0.000031421478,0.00007551955,0.00008124333],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003114506,0.00014276145,0.00010173232,0.00086285686,0.00034626582,0.00026673157,0.00020496293,0.000112489106,0.00065519725],"category_scores_gemma":[0.0003874082,0.00014298843,0.00017405339,0.0007282634,0.00021303883,0.00019980856,0.00021864049,0.00015833504,0.00006443526],"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":[0.00002397016,0.000010137648,0.9971486,0.000010952153,0.000023313578,0.0000868828,0.00015255257,0.00024252334,0.00021852062,0.000031726668,0.00009329425,0.0019576326],"study_design_scores_gemma":[3.348395e-7,0.0000042958204,0.999634,0.0000013605238,0.000004209864,0.000035511363,0.0000830189,0.000100108584,0.000027282063,0.0000038134244,0.00010497715,0.000001059371],"about_ca_topic_score_codex":0.06251365,"about_ca_topic_score_gemma":0.19217142,"teacher_disagreement_score":0.06251365,"about_ca_system_score_codex":0.00090916594,"about_ca_system_score_gemma":0.00034862835,"threshold_uncertainty_score":0.124299586},"labels":[],"label_agreement":null},{"id":"W2000347864","doi":"10.1093/jpe/rtr045","title":"The multitude of biodiversity: methods, theories and applications","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Land Use and Ecosystem Services","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":"University of Alberta","funders":"","keywords":"Multitude; Biodiversity; Ecology; Geography; Epistemology; Biology; Philosophy","score_opus":0.009732935496803815,"score_gpt":0.2480143994674168,"score_spread":0.23828146397061298,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2000347864","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":[0.02991505,0.06842332,0.8381975,0.012024803,0.0007346143,0.0002473432,0.0009601602,0.00034992836,0.049147245],"genre_scores_gemma":[0.5225918,0.045528874,0.4189444,0.0011008229,0.0017889569,0.0013921759,0.00079075893,0.00024879893,0.0076134023],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9938106,0.0033489037,0.0003005951,0.0010713077,0.0013277819,0.00014076187],"domain_scores_gemma":[0.97788185,0.015640602,0.0015182742,0.002793754,0.0016692808,0.0004961853],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.010809858,0.0012604857,0.001410867,0.010474413,0.0017906323,0.0070561403,0.0023879714,0.0014950337,0.0055715707],"category_scores_gemma":[0.027258828,0.0007372519,0.0011452133,0.0103782555,0.00856818,0.011605553,0.0061591594,0.0027882368,0.0008330204],"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":[0.000048179558,0.00005916694,0.013660713,0.0008354662,0.00015565238,0.000118530224,0.0010629203,0.0065490026,0.00025993932,0.7598071,0.004077035,0.21336621],"study_design_scores_gemma":[0.0000092484925,0.000019627721,0.002829039,0.00039301257,0.00003508038,0.00020186845,0.0005496467,0.02180275,0.00017134949,0.9584103,0.015543467,0.000034539604],"about_ca_topic_score_codex":0.0022339434,"about_ca_topic_score_gemma":0.0025168029,"teacher_disagreement_score":0.010809858,"about_ca_system_score_codex":0.0023301046,"about_ca_system_score_gemma":0.002032004,"threshold_uncertainty_score":0.057168663},"labels":[],"label_agreement":null},{"id":"W2097615997","doi":"10.1093/jpe/rtp012","title":"Big plants--do they limit species coexistence?","year":2009,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":17,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Competition (biology); Plant species; Limit (mathematics); Ecology; Biology; Coexistence theory; Mathematics","score_opus":0.06865249760729884,"score_gpt":0.21577134129747239,"score_spread":0.14711884369017353,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2097615997","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":[0.9441525,0.0053289514,0.010275498,0.0036653108,0.00013897146,0.000034431585,0.00017477667,0.000101368605,0.03612806],"genre_scores_gemma":[0.9968148,0.0005692769,0.0012862475,0.00067760673,0.000060594528,0.000017786442,0.00003306813,0.000015908441,0.0005246458],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9989581,0.00038604916,0.00005153614,0.00023889048,0.00024566404,0.00011973282],"domain_scores_gemma":[0.98597854,0.008549565,0.0020238787,0.0012155619,0.0004687452,0.0017637304],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0028515267,0.0004568031,0.00087451143,0.0005928973,0.0009977387,0.001858533,0.0011214942,0.0013910844,0.007191701],"category_scores_gemma":[0.01184718,0.00047493912,0.00034333076,0.0004422286,0.003999522,0.004040911,0.0023159625,0.0010480857,0.00089769723],"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":[0.0021129996,0.00049306324,0.40563542,0.0031772407,0.0007478442,0.0019594315,0.0068488712,0.007157671,0.15029679,0.2592088,0.005911581,0.15645026],"study_design_scores_gemma":[0.00023216469,0.0020520075,0.34033135,0.0005101526,0.000534088,0.00411446,0.0070182593,0.014502143,0.016865,0.58646333,0.027199462,0.00017760682],"about_ca_topic_score_codex":0.00040206744,"about_ca_topic_score_gemma":0.0012398945,"teacher_disagreement_score":0.007191701,"about_ca_system_score_codex":0.00051896146,"about_ca_system_score_gemma":0.00035436018,"threshold_uncertainty_score":0.02405858},"labels":[],"label_agreement":null},{"id":"W2097919457","doi":"10.1093/jpe/rtr035","title":"Large-scale spatial synchrony and the stability of forest biodiversity revisited","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Animal Ecology and Behavior Studies","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":"Biological dispersal; Ecology; Null hypothesis; Null model; Neutral theory of molecular evolution; Biodiversity; Spatial ecology; Scale (ratio); Stability (learning theory); Spatial distribution; Geography; Biology; Econometrics; Computer science; Mathematics; Cartography; Remote sensing; Machine learning; Population","score_opus":0.011607719309565862,"score_gpt":0.21458449551587214,"score_spread":0.20297677620630628,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2097919457","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":[0.9937324,0.00010246236,0.0049538566,0.00013555119,0.0000032726819,0.0000023159741,0.000018066756,0.000016256086,0.0010357529],"genre_scores_gemma":[0.9996952,0.00001552398,0.0002528593,0.0000018575811,0.0000012466892,7.9229807e-7,0.0000032594724,0.0000015478041,0.000027899945],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.9998535,0.00005029621,0.000008145632,0.00003743019,0.000026495825,0.00002417924],"domain_scores_gemma":[0.9980959,0.0012032085,0.00035374498,0.0001470992,0.00007930051,0.00012080599],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00092274096,0.00012803003,0.0002460221,0.0004975444,0.0004892535,0.00082231814,0.00048063524,0.00034556983,0.0011216459],"category_scores_gemma":[0.006082268,0.00014155854,0.00027629617,0.00043698106,0.0017145093,0.00119301,0.00076827686,0.00038924097,0.00004173752],"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":[0.00022491154,0.00006249226,0.22591315,0.00008239285,0.0001591314,0.0007181989,0.0010825053,0.6367501,0.009749301,0.10276352,0.00036172834,0.02213261],"study_design_scores_gemma":[0.00004591808,0.000073721836,0.10078502,0.000014820185,0.000044223045,0.00023415507,0.0005793471,0.8256252,0.0013345464,0.07077955,0.00045861036,0.000024982757],"about_ca_topic_score_codex":0.010726223,"about_ca_topic_score_gemma":0.010135162,"teacher_disagreement_score":0.010726223,"about_ca_system_score_codex":0.0010930217,"about_ca_system_score_gemma":0.0005164999,"threshold_uncertainty_score":0.021327555},"labels":[],"label_agreement":null},{"id":"W2098057731","doi":"10.1093/jpe/rtr048","title":"Spatial associations of tree species in a subtropical evergreen broad-leaved forest","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","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":"University of British Columbia; Zhejiang University","keywords":"Ecology; Interspecific competition; Spatial ecology; Evergreen; Null model; Co-occurrence; Biology; Spatial distribution; Common spatial pattern; Habitat; Niche; Geography","score_opus":0.01636043337249701,"score_gpt":0.2335214813713774,"score_spread":0.2171610479988804,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2098057731","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":[0.9998704,0.000019433453,0.000045242214,0.0000015902053,2.0487936e-7,7.163128e-7,0.000011726463,0.0000014435003,0.000049161692],"genre_scores_gemma":[0.99983776,0.000009705578,0.00009445116,0.0000011961342,6.1485986e-7,9.492261e-7,0.000034229874,3.4098827e-7,0.000020743715],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99980015,0.00003932914,0.000016635831,0.00007077079,0.0000382871,0.000034832392],"domain_scores_gemma":[0.9996464,0.000084238476,0.00011600911,0.00003267525,0.00005558078,0.000065185646],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003214007,0.00017517524,0.00021345829,0.0015203145,0.00038125264,0.00029955577,0.00025345973,0.00014248388,0.00031389584],"category_scores_gemma":[0.00059408543,0.00015644949,0.0002153782,0.00092566834,0.0004518412,0.00024002808,0.00039913814,0.0000830458,0.000047642377],"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":[0.00009900574,0.000025829333,0.98227614,0.000025019352,0.000064329535,0.00017694461,0.00051719276,0.0007968866,0.011216517,0.00008841246,0.000024585275,0.0046890914],"study_design_scores_gemma":[0.000001779319,0.000012041363,0.9983296,0.0000010319143,0.0000106994285,0.00005364714,0.00016296758,0.00123525,0.0001231919,0.000035545847,0.000031319927,0.0000029711098],"about_ca_topic_score_codex":0.013475153,"about_ca_topic_score_gemma":0.025531333,"teacher_disagreement_score":0.013475153,"about_ca_system_score_codex":0.0003203398,"about_ca_system_score_gemma":0.00022718325,"threshold_uncertainty_score":0.02679342},"labels":[],"label_agreement":null},{"id":"W2099434490","doi":"10.1093/jpe/rtr050","title":"Invaders' control on post-disturbance succession in coastal mangroves","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Coastal wetland ecosystem dynamics","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":false,"ca_institutions":"Lakehead University; University of Toronto","funders":"","keywords":"Ecological succession; Propagule; Mangrove; Disturbance (geology); Ecology; Biological dispersal; Vegetation (pathology); Seed dispersal; Rhizophora; Ecosystem; Biology; Environmental science; Population","score_opus":0.005206340064586385,"score_gpt":0.20023596946856967,"score_spread":0.19502962940398327,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2099434490","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":[0.9995735,0.00002681212,0.00006743762,0.0000076170504,6.2288046e-7,0.0000019125162,0.000016029544,0.0000027268877,0.00030332594],"genre_scores_gemma":[0.99983,0.000015953232,0.00004734916,0.0000032239923,5.9279944e-7,0.0000010452875,0.000014393916,5.3239444e-7,0.00008694039],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99990416,0.000024464052,0.000007266901,0.000026863534,0.000010015639,0.000027279964],"domain_scores_gemma":[0.9994696,0.00010201536,0.00018785788,0.0000378408,0.00004190133,0.00016070191],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030475477,0.00014123415,0.00013397126,0.00022983081,0.00021755086,0.00043504106,0.00016532015,0.00015728518,0.0011087212],"category_scores_gemma":[0.00068242644,0.000062788466,0.0002016303,0.000090688,0.0002808245,0.00024523312,0.00030487243,0.00014983397,0.0001029632],"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":[0.00062020245,0.0004451679,0.8926315,0.00013308974,0.00009409095,0.0008786595,0.0016096918,0.0052775657,0.082822904,0.0012693742,0.0001730627,0.014044662],"study_design_scores_gemma":[0.000005666622,0.00018775318,0.99331254,0.000005929899,0.000011239136,0.00007880547,0.0005728222,0.0045146598,0.0007862077,0.0002171471,0.00030074577,0.000006459635],"about_ca_topic_score_codex":0.004601602,"about_ca_topic_score_gemma":0.010667648,"teacher_disagreement_score":0.004601602,"about_ca_system_score_codex":0.0004174061,"about_ca_system_score_gemma":0.00021384105,"threshold_uncertainty_score":0.009149611},"labels":[],"label_agreement":null},{"id":"W2099843014","doi":"10.1093/jpe/rtr040","title":"Coexistence of nearly neutral species","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":false,"ca_institutions":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; National Natural Science Foundation of China; University of Alberta","keywords":"Neutral theory of molecular evolution; Neutrality; Biodiversity; Ecology; Statistical physics; Biology; Physics; Epistemology; Philosophy","score_opus":0.01646805067899406,"score_gpt":0.22805528295580277,"score_spread":0.2115872322768087,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2099843014","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":[0.9639849,0.0003962591,0.03133874,0.00017188852,0.000032045984,0.000012111625,0.000063531406,0.00007423077,0.0039263153],"genre_scores_gemma":[0.99709654,0.000059673894,0.002307342,0.00011992962,0.000007715563,0.000012138862,0.000053683434,0.0000069475072,0.00033600532],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99940026,0.00014969628,0.000042083557,0.00016761656,0.00014901531,0.00009131006],"domain_scores_gemma":[0.9982804,0.00062320346,0.00041960462,0.00025768325,0.00014789871,0.00027117363],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010272034,0.00023753922,0.0005078108,0.00055499066,0.00074547034,0.0010548955,0.0005007505,0.0005824554,0.0011300467],"category_scores_gemma":[0.0027776978,0.0002579368,0.00055163127,0.00025461335,0.0010320137,0.0013750389,0.0020158007,0.0006486415,0.00019716172],"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":[0.0012299482,0.0001915592,0.07444251,0.0005689487,0.00086909306,0.0028507893,0.0026973772,0.11459604,0.4414476,0.2836757,0.0014420254,0.07598846],"study_design_scores_gemma":[0.00014981364,0.0014773405,0.0630548,0.00007932608,0.0003312404,0.0071099205,0.0016210994,0.40761787,0.036050048,0.46850225,0.013705367,0.0003009456],"about_ca_topic_score_codex":0.00044684045,"about_ca_topic_score_gemma":0.00040877194,"teacher_disagreement_score":0.0011300467,"about_ca_system_score_codex":0.00056494336,"about_ca_system_score_gemma":0.00032963033,"threshold_uncertainty_score":0.005432427},"labels":[],"label_agreement":null},{"id":"W2109458003","doi":"10.1093/jpe/rtr001","title":"Analysis of diurnal boundary layer development in boreal forests: measurements and simulations","year":2011,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":0,"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":"Environmental science; Taiga; Boreal; Sensible heat; Atmospheric sciences; Boundary layer; Forcing (mathematics); Flux (metallurgy); Planetary boundary layer; Climatology; Geography; Geology; Physics","score_opus":0.029878479218474027,"score_gpt":0.22850386393735167,"score_spread":0.19862538471887764,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2109458003","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":[0.9970656,0.00005002384,0.0019864512,0.000011163103,0.000005246312,0.000013849002,0.00021142143,0.00013339143,0.0005228219],"genre_scores_gemma":[0.99815035,0.000016697793,0.001619135,0.0000031297182,0.0000012580623,0.000009557932,0.00016198763,0.000004811304,0.00003302259],"study_design_codex":"simulation_or_modeling","study_design_gemma":"observational","domain_scores_codex":[0.99986386,0.00002683045,0.000011138611,0.000038278187,0.000029906676,0.000029952773],"domain_scores_gemma":[0.99972063,0.00009726897,0.000042987227,0.0000307761,0.00007050123,0.000037746777],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0004956909,0.00044977054,0.00029918132,0.0004509064,0.00040269765,0.00030914252,0.0005204684,0.00031190013,0.00024171903],"category_scores_gemma":[0.00050410355,0.00017675964,0.00044419424,0.00035111426,0.00021258653,0.00041635934,0.00012680219,0.00016437811,0.000038799273],"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":[0.00044489038,0.0009774562,0.3816243,0.00016784055,0.000116411415,0.0002631892,0.0004279677,0.531049,0.039777692,0.0006455633,0.0009585879,0.04354709],"study_design_scores_gemma":[0.00003902207,0.00013522725,0.16093591,0.00000807946,0.000026598282,0.000049930557,0.00012455117,0.83433163,0.0038891113,0.00012662423,0.0003079107,0.000025327814],"about_ca_topic_score_codex":0.10076765,"about_ca_topic_score_gemma":0.09683393,"teacher_disagreement_score":0.10076765,"about_ca_system_score_codex":0.0008818964,"about_ca_system_score_gemma":0.00054594624,"threshold_uncertainty_score":0.2003622},"labels":[],"label_agreement":null},{"id":"W2110316955","doi":"10.1093/jpe/rtr036","title":"Trees are rarely most abundant where they grow best","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Species Distribution and Climate Change","field":"Environmental Science","cited_by":68,"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":"McGill University","keywords":"Niche; Abundance (ecology); Structuring; Ecology; Context (archaeology); Habitat; Relative species abundance; Tree (set theory); Ecological niche; Biology; Mathematics","score_opus":0.024305485818571358,"score_gpt":0.23502879048750572,"score_spread":0.21072330466893435,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2110316955","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":[0.96910214,0.0011310092,0.004092411,0.00024666562,0.0000518014,0.00002720163,0.0032059976,0.00022120707,0.021921737],"genre_scores_gemma":[0.9926394,0.0002626824,0.0011140822,0.00013250894,0.000037327383,0.000019009425,0.0017188535,0.00005797655,0.004018173],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9991353,0.00017474352,0.00006040535,0.00024792305,0.00019724664,0.00018445964],"domain_scores_gemma":[0.9978536,0.0006077499,0.0007605947,0.00034698544,0.00018782406,0.0002432101],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00054094195,0.00021340356,0.0006885565,0.0011679333,0.000829911,0.0010905104,0.00052307744,0.00042752706,0.006849449],"category_scores_gemma":[0.002555493,0.0002038724,0.00020773252,0.001813413,0.0005429372,0.00080805586,0.0007610288,0.00034748475,0.0036268928],"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":[0.0005735459,0.00019347087,0.820018,0.00048410174,0.0003407961,0.0009268721,0.0021223577,0.002460788,0.016654849,0.006420173,0.017083755,0.1327213],"study_design_scores_gemma":[0.000043548294,0.00021302432,0.9033742,0.00012695795,0.00011842475,0.003122007,0.0019893218,0.0029281813,0.0043317107,0.010379903,0.07330428,0.000068430956],"about_ca_topic_score_codex":0.001896976,"about_ca_topic_score_gemma":0.008588583,"teacher_disagreement_score":0.006849449,"about_ca_system_score_codex":0.00024200385,"about_ca_system_score_gemma":0.00015736003,"threshold_uncertainty_score":0.022913635},"labels":[],"label_agreement":null},{"id":"W2110757236","doi":"10.1093/jpe/rtn011","title":"Biodiversity effects and transgressive overyielding","year":2008,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":201,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"McGill University","funders":"Natural Sciences and Engineering Research Council of Canada; Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung; National Science Foundation","keywords":"Monoculture; Transgressive; Biodiversity; Biology; Transgressive segregation; Biomass (ecology); Variation (astronomy); Ecology; Geography; Paleontology; Physics","score_opus":0.0074772250481537775,"score_gpt":0.1876127710923689,"score_spread":0.1801355460442151,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2110757236","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":[0.99133146,0.00054141396,0.0070683425,0.000028653061,0.000007762145,0.000021515914,0.00012892016,0.000042959393,0.00082905445],"genre_scores_gemma":[0.99489236,0.00011061185,0.0042061857,0.000064717446,0.000004413626,0.000040519848,0.00022145537,0.000039078124,0.0004208374],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9957937,0.0012653829,0.00035448372,0.0011566426,0.0011370155,0.0002928246],"domain_scores_gemma":[0.9888256,0.0060270727,0.0017436321,0.0020445092,0.0007427516,0.0006163849],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.004257238,0.00057975756,0.00073735556,0.0007405353,0.0004031899,0.0006428491,0.0007900614,0.00060787745,0.0013183082],"category_scores_gemma":[0.0053650187,0.00037149538,0.0006412807,0.00055573654,0.0012752509,0.0011517878,0.0023944345,0.0011306907,0.00019846161],"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":[0.0018441116,0.00026335573,0.051591918,0.00030024987,0.00033655134,0.00020989822,0.0002974412,0.0034529178,0.9161892,0.00091099326,0.00004419816,0.024559222],"study_design_scores_gemma":[0.000053904954,0.0040941397,0.6470274,0.00003504312,0.00021983856,0.00057624653,0.00020566443,0.008835759,0.3346768,0.0028637704,0.001332738,0.00007869362],"about_ca_topic_score_codex":0.00058963604,"about_ca_topic_score_gemma":0.0011412808,"teacher_disagreement_score":0.004257238,"about_ca_system_score_codex":0.00088206824,"about_ca_system_score_gemma":0.00022494163,"threshold_uncertainty_score":0.022514641},"labels":[],"label_agreement":null},{"id":"W2113535915","doi":"10.1093/jpe/rts029","title":"Leaf size versus leaf numbertrade-offs in dioecious angiosperms","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":7,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Herbaceous plant; Biology; Inflorescence; Shoot; Dioecy; Botany; Pollen; Sexual dimorphism; Meristem; Leaf size; Biomass (ecology); Specific leaf area; Agronomy; Photosynthesis; Zoology","score_opus":0.03908917443603452,"score_gpt":0.22800485283008579,"score_spread":0.18891567839405127,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2113535915","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":[0.99794394,0.00026395675,0.0007805475,0.000030295376,0.0000014764961,0.0000028036668,0.00013432566,0.000018263629,0.0008244657],"genre_scores_gemma":[0.9989172,0.00005321433,0.0004795433,0.000034799537,0.0000057520992,0.0000050376907,0.00022874773,0.000009451167,0.00026621405],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99986327,0.0000321234,0.000011399377,0.00005494144,0.000022073144,0.000016202215],"domain_scores_gemma":[0.99895835,0.0004826009,0.00030437505,0.00006438475,0.00006399634,0.00012626496],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00036925997,0.0001802298,0.0003138031,0.0008480117,0.00026986818,0.00042947882,0.00034147306,0.00032825707,0.0014454026],"category_scores_gemma":[0.0006577571,0.00021356801,0.00019552793,0.0004924233,0.00032577047,0.00040461338,0.0003293671,0.00026180464,0.00024187421],"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":[0.0004147063,0.00007248588,0.33467513,0.00020510545,0.00010102266,0.00024836845,0.00047952525,0.0012462558,0.6397956,0.00089308637,0.00016257021,0.021706138],"study_design_scores_gemma":[0.000011598992,0.00009847351,0.99333453,0.000003962163,0.000016448274,0.00022518098,0.000064963424,0.0019060574,0.0034608243,0.00053200196,0.00033545855,0.000010495769],"about_ca_topic_score_codex":0.0007989925,"about_ca_topic_score_gemma":0.0023522747,"teacher_disagreement_score":0.0014454026,"about_ca_system_score_codex":0.00037675406,"about_ca_system_score_gemma":0.000085274914,"threshold_uncertainty_score":0.004835367},"labels":[],"label_agreement":null},{"id":"W2114595102","doi":"10.1093/jpe/rtr049","title":"Impacts of predictor variables and species models on simulating Tamarix ramosissima distribution in Tarim Basin, northwestern China","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Species Distribution and Climate Change","field":"Environmental Science","cited_by":30,"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":"Institute of Botany, Chinese Academy of Sciences; Chinese Research Academy of Environmental Sciences; University of British Columbia; Chinese Academy of Sciences","keywords":"Tamarix; Predictive modelling; Principal component analysis; Species distribution; Environmental science; Random forest; Vegetation (pathology); Multivariate statistics; Climate change; Ecology; Statistics; Mathematics; Computer science; Biology; Machine learning; Habitat","score_opus":0.019799653309621072,"score_gpt":0.22986930281599577,"score_spread":0.2100696495063747,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2114595102","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":[0.99719846,0.000067588255,0.0016192911,0.00009827292,0.000010313888,0.000013118271,0.00025109135,0.00010812681,0.0006336822],"genre_scores_gemma":[0.9979018,0.000043511398,0.001394908,0.000016862185,0.0000031242962,0.0000252557,0.00036605957,0.000010257498,0.0002382263],"study_design_codex":"simulation_or_modeling","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9997197,0.00012575026,0.000016175003,0.000061416664,0.0000233207,0.000053610733],"domain_scores_gemma":[0.9992536,0.00041666502,0.00006354082,0.000051587675,0.00013806026,0.00007660701],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0011653862,0.0007996568,0.0005230513,0.0006499311,0.00050289556,0.0007035221,0.00097144244,0.0006159915,0.0012660398],"category_scores_gemma":[0.001413404,0.00029292426,0.00091696304,0.0006226081,0.00038253708,0.0005183835,0.0005080688,0.0005244491,0.00012064217],"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":[0.00007765405,0.00011178632,0.04677402,0.000034166198,0.000053105614,0.00010895546,0.000047923924,0.9467697,0.0005389625,0.0003134796,0.00028239234,0.0048877997],"study_design_scores_gemma":[0.000020849897,0.00002140592,0.007083454,0.00000482767,0.000018656763,0.000007571083,0.00005941753,0.9923235,0.00020320203,0.00012995134,0.00011946964,0.000007651595],"about_ca_topic_score_codex":0.08476475,"about_ca_topic_score_gemma":0.052609246,"teacher_disagreement_score":0.08476475,"about_ca_system_score_codex":0.0013744582,"about_ca_system_score_gemma":0.0015646382,"threshold_uncertainty_score":0.16854274},"labels":[],"label_agreement":null},{"id":"W2116041296","doi":"10.1093/jpe/rtt002","title":"Nestedness in insular floras: spatiotemporal variation and underlying mechanisms","year":2013,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":22,"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":"Coordenação de Aperfeiçoamento de Pessoal de Nível Superior; Cape Breton University","keywords":"Nestedness; Ecology; Archipelago; Species richness; Biology; Geography","score_opus":0.04715578126835959,"score_gpt":0.20943757738353083,"score_spread":0.16228179611517124,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2116041296","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":[0.99896455,0.00024722976,0.0004995496,0.000016009193,0.0000012931948,0.0000029565156,0.000056664823,0.0000058154737,0.00020587909],"genre_scores_gemma":[0.999637,0.000042700576,0.00022888875,0.000003369703,0.000001349832,0.0000026792084,0.00005092967,0.0000013634608,0.00003163879],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996345,0.00009731014,0.000028243128,0.00014814835,0.00004681127,0.00004492468],"domain_scores_gemma":[0.99812466,0.00047739988,0.000885499,0.00021761408,0.00015089393,0.0001439384],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000767594,0.0001498484,0.00025913797,0.0007959719,0.00034209425,0.00054034934,0.00026808382,0.00017284922,0.0005897029],"category_scores_gemma":[0.0021197693,0.00014179037,0.0002457333,0.000819902,0.00082189555,0.00034585345,0.0005663629,0.00017685979,0.00005353751],"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":[0.000054468204,0.00001818635,0.9873498,0.000032471577,0.00010763087,0.0000638869,0.0009015759,0.00032986692,0.0041494905,0.00018505199,0.000043739477,0.006763716],"study_design_scores_gemma":[5.663442e-7,0.000011870689,0.9989687,0.000004370653,0.000009591767,0.000039527662,0.00020029287,0.0005299302,0.00009769523,0.000078785844,0.000055847016,0.0000027089184],"about_ca_topic_score_codex":0.0113970125,"about_ca_topic_score_gemma":0.024294656,"teacher_disagreement_score":0.0113970125,"about_ca_system_score_codex":0.00038330824,"about_ca_system_score_gemma":0.0002028258,"threshold_uncertainty_score":0.022661328},"labels":[],"label_agreement":null},{"id":"W2118428712","doi":"10.1093/jpe/rtr008","title":"Competition and body size in plants: the between-species trade-off for maximum potential versus minimum reproductive threshold size","year":2011,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":39,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Queen's University","funders":"","keywords":"Competition (biology); Biology; Ecology; Vegetation (pathology); Offspring","score_opus":0.02158719337467644,"score_gpt":0.2302819349617493,"score_spread":0.20869474158707288,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2118428712","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":[0.99766517,0.00013687798,0.0009830461,0.000082484046,0.000004155946,0.0000046135383,0.00003960373,0.000007809816,0.001076253],"genre_scores_gemma":[0.99946755,0.000016205784,0.00032509858,0.000030276939,0.0000056415674,0.0000070897145,0.00003367264,0.0000050728345,0.000109538276],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99967575,0.00012651336,0.000020479063,0.0000853519,0.000061623,0.000030236668],"domain_scores_gemma":[0.9962041,0.0024124568,0.00072399696,0.00018488975,0.00009283233,0.00038178416],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0007151939,0.00016500188,0.00045421007,0.0005359818,0.00035381533,0.00058952894,0.00047137518,0.00051566586,0.002568309],"category_scores_gemma":[0.0033516244,0.00017385518,0.00022955223,0.00037683145,0.0011526083,0.0009299598,0.00082765036,0.00057665736,0.00019212982],"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":[0.0012628651,0.00033792882,0.7568793,0.00022372206,0.00020353135,0.00037905562,0.0011763393,0.0025799328,0.21236728,0.0042965454,0.0003707421,0.01992264],"study_design_scores_gemma":[0.000013390582,0.00021336581,0.9935549,0.000006973654,0.000016088356,0.00020162998,0.00015914539,0.0024743613,0.0016405454,0.0014828712,0.00022336589,0.000013250263],"about_ca_topic_score_codex":0.0008337609,"about_ca_topic_score_gemma":0.0024937026,"teacher_disagreement_score":0.002568309,"about_ca_system_score_codex":0.00036176605,"about_ca_system_score_gemma":0.00017299133,"threshold_uncertainty_score":0.008591831},"labels":[],"label_agreement":null},{"id":"W2124225749","doi":"10.1093/jpe/rtr042","title":"Dealing with detection error in site occupancy surveys: what can we do with a single survey?","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Economic and Environmental Valuation","field":"Economics, Econometrics and Finance","cited_by":132,"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":"","keywords":"Occupancy; Replicate; Estimator; Independence (probability theory); Population; Statistics; Closure (psychology); Geography; Computer science; Ecology; Mathematics; Biology; Demography","score_opus":0.09693643996269223,"score_gpt":0.21799087408511922,"score_spread":0.12105443412242699,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2124225749","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":[0.05123306,0.12550385,0.58267957,0.22252512,0.008007379,0.0009455012,0.0010894999,0.0010919506,0.0069241305],"genre_scores_gemma":[0.41976622,0.04983514,0.48869792,0.025001708,0.010076674,0.0020014693,0.00089669484,0.00040653284,0.0033176749],"study_design_codex":"design_other","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.87570477,0.095793016,0.0077604,0.008484197,0.011096987,0.0011606673],"domain_scores_gemma":[0.41417447,0.4825845,0.028910862,0.032844607,0.03689432,0.004591244],"candidate_categories":["metaresearch"],"consensus_categories":[],"category_scores_codex":[0.18996072,0.0026689172,0.008017972,0.0041862633,0.0017090995,0.0049102143,0.0070163156,0.009206408,0.0024955226],"category_scores_gemma":[0.5438814,0.0013803593,0.0030143072,0.006372411,0.0073893084,0.020645728,0.0051938975,0.007215053,0.0011757447],"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":[0.00097496173,0.0005896156,0.112445965,0.0068170032,0.0027885027,0.0008330494,0.0032163032,0.014596901,0.0006288952,0.020346116,0.03537417,0.8013885],"study_design_scores_gemma":[0.0010574955,0.003827733,0.14044495,0.0269512,0.0043287347,0.0069490788,0.008607621,0.19877219,0.0034528305,0.4925991,0.11133299,0.0016760429],"about_ca_topic_score_codex":0.008009834,"about_ca_topic_score_gemma":0.0075570266,"teacher_disagreement_score":0.18996072,"about_ca_system_score_codex":0.0029349627,"about_ca_system_score_gemma":0.004800902,"threshold_uncertainty_score":0.99892265},"labels":[],"label_agreement":null},{"id":"W2129899392","doi":"10.1093/jpe/rtt069","title":"Multi-scale phylogenetic structure in coastal dune plant communities across the globe","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"Canmore Museum and Geoscience Centre; Memorial University of Newfoundland; Queen's University","funders":"","keywords":"Phylogenetic tree; Ecology; Biological dispersal; Taxon; Geography; Range (aeronautics); Diversification (marketing strategy); Biology; Plant community; Species richness; Macroecology; Biogeography","score_opus":0.009319373740831255,"score_gpt":0.23439389670486582,"score_spread":0.22507452296403457,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2129899392","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":[0.99870133,0.00014226577,0.00019615029,0.000030150239,0.0000012134959,0.0000012121207,0.0006254706,0.0000059346585,0.00029632926],"genre_scores_gemma":[0.99797577,0.00012583726,0.00044439532,0.000016428396,0.0000021850133,0.0000047698463,0.0013159786,0.000005161247,0.00010954244],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99971145,0.00006839332,0.000015904006,0.00011168029,0.00003664694,0.000055876924],"domain_scores_gemma":[0.9989084,0.00029645118,0.00026848752,0.00017979609,0.00018714959,0.00015962294],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00042304615,0.0001749027,0.00031688582,0.002654959,0.0004217952,0.00087396335,0.00024142975,0.0002813098,0.0012550916],"category_scores_gemma":[0.0015063515,0.0001290156,0.00020926325,0.0033088194,0.0003984113,0.00060284976,0.001174274,0.00026936512,0.00014989128],"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":[0.000084039144,0.000022672648,0.96384645,0.0000820013,0.000286175,0.00014170852,0.0018538146,0.0008359743,0.012182996,0.00036989394,0.00060872186,0.019685565],"study_design_scores_gemma":[0.0000014927627,0.000004269878,0.99832374,0.0000067649394,0.000011368828,0.000026641275,0.0005329432,0.00040763445,0.00008843678,0.00008984436,0.0005035817,0.000003344665],"about_ca_topic_score_codex":0.014167523,"about_ca_topic_score_gemma":0.029927704,"teacher_disagreement_score":0.014167523,"about_ca_system_score_codex":0.00039555877,"about_ca_system_score_gemma":0.00022347154,"threshold_uncertainty_score":0.028170109},"labels":[],"label_agreement":null},{"id":"W2131801173","doi":"10.1093/jpe/rts016","title":"Canopy gap size influences niche partitioning of the ground-layer plant community in a northern temperate forest","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"Western University","funders":"Natural Resources Conservation Service","keywords":"Understory; Temperate climate; Transect; Canopy; Ecology; Abundance (ecology); Temperate forest; Community structure; Niche; Environmental science; Temperate rainforest; Biology; Ecosystem","score_opus":0.024733255385010956,"score_gpt":0.24729821350888956,"score_spread":0.2225649581238786,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2131801173","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":[0.99990225,0.000020382708,0.000020462401,0.0000011372204,1.5695818e-7,6.3604205e-7,0.0000093586195,9.4512757e-7,0.000044665365],"genre_scores_gemma":[0.99980444,0.00001843855,0.00007627342,0.0000044226276,5.0871495e-7,0.0000023509174,0.000047541016,0.0000011943367,0.000044775246],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99974364,0.00007403442,0.000014280043,0.0000928751,0.00002616065,0.0000489234],"domain_scores_gemma":[0.99946505,0.00016994288,0.00013867728,0.00004335232,0.0000374401,0.00014552477],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00047951407,0.00018852168,0.0002518407,0.00036091093,0.00037586386,0.0006356691,0.0001942352,0.00021015001,0.00056385883],"category_scores_gemma":[0.0008206951,0.00016474939,0.00015156044,0.00022504246,0.00037352313,0.00038832313,0.0004778643,0.00017820827,0.0000731809],"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":[0.00075140625,0.0001573859,0.9057017,0.00004917653,0.00008382683,0.00015275255,0.0018332307,0.00049855787,0.08471882,0.00012512121,0.000064121035,0.005863997],"study_design_scores_gemma":[0.0000036721353,0.00007827843,0.99858093,0.0000031205395,0.000009088604,0.000047408907,0.00035217585,0.0005516446,0.00023797616,0.000034380962,0.00009850428,0.000002985735],"about_ca_topic_score_codex":0.010635147,"about_ca_topic_score_gemma":0.029783638,"teacher_disagreement_score":0.010635147,"about_ca_system_score_codex":0.0003785188,"about_ca_system_score_gemma":0.00024528996,"threshold_uncertainty_score":0.021146476},"labels":[],"label_agreement":null},{"id":"W2134390231","doi":"10.1093/jpe/rtu030","title":"A systematic review of the attractant-decoy and repellent-plant hypotheses: do plants with heterospecific neighbours escape herbivory?","year":2014,"lang":"en","type":"review","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"York University","funders":"","keywords":"Herbivore; Ecology; Biome; Decoy; Taiga; Biology; Ecosystem","score_opus":0.014306705344408784,"score_gpt":0.24112256209515187,"score_spread":0.2268158567507431,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2134390231","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":[0.00069774577,0.9980799,0.00017956183,0.00031105764,0.00010821775,0.00005726015,0.00022818422,0.000005565997,0.00033261013],"genre_scores_gemma":[0.0044413763,0.9940701,0.0005530849,0.00043524866,0.00006669702,0.00011120894,0.000212935,0.0000036239878,0.0001057861],"study_design_codex":"systematic_review","study_design_gemma":"systematic_review","domain_scores_codex":[0.9950047,0.0015451239,0.001885137,0.00060075446,0.0008131123,0.00015116633],"domain_scores_gemma":[0.95959723,0.032407727,0.0044963746,0.00051664264,0.0026207492,0.0003613495],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.006840509,0.0014381845,0.004738676,0.012222948,0.00066825066,0.0027509923,0.0018591292,0.002004406,0.005353875],"category_scores_gemma":[0.03870689,0.0010322148,0.004000092,0.01153626,0.0013834185,0.0037959302,0.0015606342,0.0011981165,0.0006717363],"study_design_candidate":"systematic_review","study_design_consensus":"systematic_review","about_ca_topic_candidate":false,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.000103748425,0.00002568228,0.0012022789,0.84137213,0.002241058,0.00015482165,0.000511689,0.0001552078,0.00023036964,0.0011302208,0.0046417653,0.14823103],"study_design_scores_gemma":[0.000071909715,0.00023447807,0.008342148,0.87881756,0.013890048,0.0006575685,0.0010621275,0.00010476021,0.00018770037,0.0013507359,0.09522637,0.000054595013],"about_ca_topic_score_codex":0.00861963,"about_ca_topic_score_gemma":0.025097148,"teacher_disagreement_score":0.012222948,"about_ca_system_score_codex":0.00242358,"about_ca_system_score_gemma":0.014097453,"threshold_uncertainty_score":0.036176503},"labels":[],"label_agreement":null},{"id":"W2137082061","doi":"10.1093/jpe/rtm001","title":"Studying beta diversity: ecological variation partitioning by multiple regression and canonical analysis","year":2007,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":505,"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","funders":"","keywords":"Beta diversity; Biodiversity; Regression analysis; Ecology; Canonical correspondence analysis; Alpha diversity; Gamma diversity; Regression; Spatial variability; Statistics; Mathematics; Biology; Species richness","score_opus":0.014079332930598728,"score_gpt":0.23646389521876818,"score_spread":0.22238456228816944,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2137082061","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":[0.25994188,0.0009873968,0.7334794,0.00017261841,0.000048175003,0.00014822128,0.00049195427,0.00050133053,0.0042290045],"genre_scores_gemma":[0.6481541,0.0006742386,0.34814882,0.00004804399,0.00007826823,0.0003549652,0.0011461357,0.00042431254,0.0009711176],"study_design_codex":"design_other","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.9946873,0.00342768,0.00014440846,0.00074600545,0.0007693662,0.00022525081],"domain_scores_gemma":[0.9887743,0.008060206,0.0009004578,0.0010260456,0.0009832211,0.00025586382],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00687104,0.0010830176,0.0010018718,0.0054493495,0.0006792141,0.0012931456,0.00066177535,0.00030189072,0.0016062403],"category_scores_gemma":[0.021412103,0.00037890475,0.0012022479,0.0068704053,0.0009645761,0.0015788812,0.0010528048,0.0010992441,0.0005068504],"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":[0.00049006246,0.00026807532,0.24364036,0.0004701688,0.0015378137,0.00037269897,0.003323408,0.073916614,0.019732246,0.043921698,0.00491886,0.60740805],"study_design_scores_gemma":[0.00006398398,0.00043156475,0.39783233,0.00013701757,0.00035176825,0.0012993383,0.001911653,0.47982478,0.0076564155,0.09695241,0.013273102,0.00026557117],"about_ca_topic_score_codex":0.0043166303,"about_ca_topic_score_gemma":0.0035482228,"teacher_disagreement_score":0.00687104,"about_ca_system_score_codex":0.0005645934,"about_ca_system_score_gemma":0.0005488989,"threshold_uncertainty_score":0.03633797},"labels":[],"label_agreement":null},{"id":"W2137462649","doi":"10.1093/jpe/rtr039","title":"Demographic trade-offs determine species abundance and diversity","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":18,"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","funders":"National Natural Science Foundation of China; University of Alberta","keywords":"Neutral theory of molecular evolution; Relative abundance distribution; Biodiversity; Metacommunity; Ecology; Abundance (ecology); Biology; Relative species abundance; Demography; Population; Sociology","score_opus":0.04491856205231237,"score_gpt":0.19374352980298704,"score_spread":0.14882496775067466,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2137462649","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":[0.9896881,0.00052039983,0.0053932676,0.00023599029,0.000006636961,0.0000044759645,0.000073259514,0.00002114918,0.0040568826],"genre_scores_gemma":[0.999201,0.00008696976,0.000445939,0.000021163241,0.000006936906,0.0000023983962,0.00002756863,0.000003935983,0.0002041856],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9995074,0.0001719239,0.000037727066,0.0001452812,0.00007270536,0.00006496992],"domain_scores_gemma":[0.9949527,0.0028807851,0.0011727905,0.00029666116,0.00031030516,0.00038681357],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.001513909,0.00014623538,0.0002894193,0.0009886308,0.00043291118,0.0011601427,0.00044165648,0.00055700104,0.0023578114],"category_scores_gemma":[0.0072877496,0.00020726085,0.00019874376,0.0004762872,0.0011749453,0.00181233,0.00086926675,0.00047632222,0.00050678034],"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":[0.00030665036,0.000117835116,0.8354592,0.00016102004,0.00023519393,0.00049441727,0.0012826056,0.0149838785,0.036766045,0.046446618,0.0008723759,0.062874295],"study_design_scores_gemma":[0.000027591474,0.00012988837,0.8536595,0.00002953332,0.00006318974,0.0013272142,0.0011920222,0.041386623,0.0022824334,0.09758561,0.002258084,0.000058319973],"about_ca_topic_score_codex":0.00047587446,"about_ca_topic_score_gemma":0.0011677175,"teacher_disagreement_score":0.0023578114,"about_ca_system_score_codex":0.00050277787,"about_ca_system_score_gemma":0.00015187741,"threshold_uncertainty_score":0.0080064535},"labels":[],"label_agreement":null},{"id":"W2138080711","doi":"10.1093/jpe/rtq012","title":"Generalized food-deceptive orchid species flower earlier and occur at lower altitudes than rewarding ones","year":2010,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":48,"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":"Orchidaceae; Pollinator; Pollination; Biology; Altitude (triangle); Ecology; Habitat; Pollen","score_opus":0.03219603340904668,"score_gpt":0.20730941971114827,"score_spread":0.1751133863021016,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2138080711","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":[0.99889046,0.00022590125,0.0003361421,0.000004065517,0.0000011276275,0.0000044807,0.00013991511,0.0000075809044,0.00039037876],"genre_scores_gemma":[0.9988355,0.00011121124,0.000561191,0.000007928789,0.0000027133813,0.000004568509,0.0002938505,0.0000029847852,0.00018000927],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998969,0.000015017507,0.000013276649,0.00003864018,0.000018360097,0.000017810633],"domain_scores_gemma":[0.9992138,0.0002272087,0.00032188668,0.000084199375,0.000061455525,0.00009149698],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019902422,0.00014120343,0.00029102663,0.00050936034,0.00029919815,0.00031500173,0.00016475425,0.00014483283,0.0011896606],"category_scores_gemma":[0.00045389688,0.00009668444,0.00018883003,0.0004453165,0.00024256932,0.00030843922,0.00031392905,0.00019523656,0.00012650774],"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":[0.00020151862,0.000040303108,0.8565662,0.00034258392,0.000093424846,0.00034004662,0.0009886815,0.00033779108,0.1258949,0.00024126327,0.00008207215,0.014871266],"study_design_scores_gemma":[0.0000013983959,0.000033609544,0.9984647,0.0000035191595,0.000007115436,0.00018636862,0.00010307076,0.000084492945,0.000798748,0.000045406545,0.00026907944,0.0000024404512],"about_ca_topic_score_codex":0.001496711,"about_ca_topic_score_gemma":0.0067037554,"teacher_disagreement_score":0.001496711,"about_ca_system_score_codex":0.00018226074,"about_ca_system_score_gemma":0.00010611948,"threshold_uncertainty_score":0.003979802},"labels":[],"label_agreement":null},{"id":"W2140796040","doi":"10.1093/jpe/rtp007","title":"Towards a trait-based quantification of species niche","year":2009,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Species Distribution and Climate Change","field":"Environmental Science","cited_by":296,"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":"McGill University; National Science Foundation","keywords":"Niche; Ecological niche; Trait; Biology; Ecology; Niche segregation; Environmental niche modelling; Intraspecific competition; Niche differentiation; Coexistence theory; Evolutionary biology; Habitat","score_opus":0.0398757336169445,"score_gpt":0.2584810195966156,"score_spread":0.21860528597967113,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2140796040","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":[0.11922594,0.0007773258,0.8767681,0.00014945421,0.000018225577,0.000033070814,0.00089825084,0.0005137751,0.001615866],"genre_scores_gemma":[0.65867853,0.00036779811,0.33947748,0.00007244785,0.00003595463,0.000099844154,0.0007297831,0.00013831141,0.00039983014],"study_design_codex":"design_other","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9990125,0.0004516873,0.000053072476,0.00025463107,0.0001746549,0.00005339388],"domain_scores_gemma":[0.99774796,0.0010934873,0.00037121717,0.0003565046,0.00030161944,0.00012920241],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0017717304,0.0006269908,0.00071612216,0.0028722466,0.00036393185,0.0017004521,0.0008270363,0.0006597111,0.00083438394],"category_scores_gemma":[0.0050296094,0.00030581155,0.0007398817,0.0018113583,0.00095766474,0.001963848,0.0015285871,0.0009542715,0.00032922835],"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":[0.00045517614,0.00023597441,0.13441288,0.0009930731,0.00066129974,0.00020801605,0.0011686952,0.14350194,0.2687575,0.090226345,0.0018633027,0.35751575],"study_design_scores_gemma":[0.000023521485,0.00019602386,0.11886045,0.00012782012,0.00011548731,0.0007416424,0.00033994665,0.7418165,0.022685489,0.105364166,0.009509722,0.00021927308],"about_ca_topic_score_codex":0.0013574363,"about_ca_topic_score_gemma":0.0010481497,"teacher_disagreement_score":0.0028722466,"about_ca_system_score_codex":0.00044494413,"about_ca_system_score_gemma":0.0003626627,"threshold_uncertainty_score":0.00936991},"labels":[],"label_agreement":null},{"id":"W2142648254","doi":"10.1093/jpe/rtp018","title":"The leaf size/number trade-off in herbaceous angiosperms","year":2009,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":71,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Queen's University","funders":"Agriculture and Agri-Food Canada; Natural Sciences and Engineering Research Council of Canada","keywords":"Herbaceous plant; Leaf size; Biology; Adaptation (eye); Botany; Horticulture","score_opus":0.004854775279289563,"score_gpt":0.22014152034867376,"score_spread":0.2152867450693842,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2142648254","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":[0.99886274,0.00016791109,0.00034729848,0.000011685121,6.8338187e-7,0.0000021664832,0.000053999927,0.0000067575425,0.00054679706],"genre_scores_gemma":[0.9992761,0.000043877095,0.00032927256,0.000011584305,0.0000027531723,0.0000022597358,0.00010209205,0.0000033649355,0.00022870468],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99977976,0.000035608144,0.000013061556,0.00007907738,0.00006852302,0.00002394072],"domain_scores_gemma":[0.99893945,0.0003673727,0.00039115964,0.000082861814,0.00010888231,0.00011024271],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00030984063,0.00014162037,0.00024958779,0.000751446,0.0004175474,0.0004695354,0.00033550282,0.00022511029,0.0011382276],"category_scores_gemma":[0.0012326193,0.00015462044,0.00016431953,0.0005488725,0.0003994935,0.0003473872,0.0003022386,0.00016785749,0.00013603763],"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":[0.00018982773,0.000031086325,0.8455961,0.00008113982,0.000113632086,0.00018749456,0.00060163037,0.00081213407,0.13478957,0.00030304704,0.00009780556,0.017196642],"study_design_scores_gemma":[0.0000016308536,0.000015578975,0.9989625,0.0000011197026,0.000006008688,0.00007882909,0.000034334353,0.00028327142,0.00043102956,0.00007774979,0.000105643245,0.0000023302289],"about_ca_topic_score_codex":0.011636837,"about_ca_topic_score_gemma":0.042921014,"teacher_disagreement_score":0.011636837,"about_ca_system_score_codex":0.00070020213,"about_ca_system_score_gemma":0.0002106873,"threshold_uncertainty_score":0.023138165},"labels":[],"label_agreement":null},{"id":"W2144206920","doi":"10.1093/jpe/rtq032","title":"Seasonal patterns of root and shoot interactions in an alpine meadow on the Tibetan Plateau","year":2010,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":"University of British Columbia","keywords":"Shoot; Perennial plant; Biology; Growing season; Plant community; Botany; Agronomy; Ecological succession","score_opus":0.012001035435559478,"score_gpt":0.25146034149431523,"score_spread":0.23945930605875576,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2144206920","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":[0.9998228,0.000019800802,0.000021524706,0.0000031265215,4.2286365e-7,7.8403804e-7,0.000024775542,0.0000014911582,0.00010536058],"genre_scores_gemma":[0.9996613,0.000013114639,0.000057488487,0.000004272738,0.0000016829518,0.0000025967668,0.00010235294,0.0000010266314,0.00015628274],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99993324,0.000015784526,0.000004473988,0.000019151075,0.000009787497,0.000017514167],"domain_scores_gemma":[0.9998155,0.000028468196,0.00004603299,0.000007456271,0.000031624346,0.00007097742],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00017366248,0.00014906771,0.00017526613,0.0005145805,0.00046577348,0.00029350657,0.00016326702,0.00019715795,0.000584319],"category_scores_gemma":[0.00016919783,0.00008163951,0.0001183274,0.00037851068,0.00020707281,0.0001129501,0.00019615515,0.00014671011,0.00006774977],"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":[0.00038644488,0.00010178976,0.9220283,0.00004509671,0.00008730095,0.0003938726,0.0015941103,0.00032434953,0.06886096,0.000059094607,0.00010321715,0.006015496],"study_design_scores_gemma":[0.000001558257,0.000028381923,0.99945086,0.0000011163881,0.0000036847434,0.000019631838,0.00015335808,0.00020498988,0.00007841308,0.0000066312987,0.00004994454,0.0000015424047],"about_ca_topic_score_codex":0.018331569,"about_ca_topic_score_gemma":0.056368776,"teacher_disagreement_score":0.018331569,"about_ca_system_score_codex":0.00034187763,"about_ca_system_score_gemma":0.00019922244,"threshold_uncertainty_score":0.03644973},"labels":[],"label_agreement":null},{"id":"W2145648342","doi":"10.1093/jpe/rtr004","title":"Assessing the impacts of vegetation heterogeneity on energy fluxes and snowmelt in boreal forests","year":2011,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Cryospheric studies and observations","field":"Earth and Planetary Sciences","cited_by":26,"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":"National Center for Atmospheric Research","keywords":"Snowmelt; Boreal; Taiga; Snow; Environmental science; Vegetation (pathology); Physical geography; Ecology; Latitude; Atmospheric sciences; Hydrology (agriculture); Geography; Geology; Meteorology; Biology","score_opus":0.038210832127434806,"score_gpt":0.2577996137673366,"score_spread":0.2195887816399018,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2145648342","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":[0.9996201,0.000015349797,0.00018696778,0.000006195358,0.0000013101703,0.0000034504499,0.00004120091,0.000008876396,0.00011650396],"genre_scores_gemma":[0.99976593,0.000006968625,0.00015860697,0.0000022066647,9.0171807e-7,0.0000019176662,0.000045108503,0.0000015597625,0.000016749416],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998319,0.000044018972,0.000013569424,0.000043969838,0.000023527482,0.000043038573],"domain_scores_gemma":[0.99959534,0.0001967611,0.00006728542,0.000030404399,0.000041931788,0.000068256624],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00044901317,0.0005143642,0.00029636652,0.00035368616,0.0004432398,0.00051312,0.00045532265,0.00040550207,0.0002952517],"category_scores_gemma":[0.00075258646,0.0002468054,0.00049637153,0.00034496005,0.00038886693,0.00064607424,0.0002862716,0.00018906119,0.000026675934],"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":[0.00055830367,0.00038967034,0.50458705,0.000065106564,0.00019347518,0.0003753545,0.00016114784,0.46659508,0.019150762,0.0004973267,0.00017789881,0.0072488254],"study_design_scores_gemma":[0.00007685851,0.00028503782,0.42421415,0.000006699063,0.000060817605,0.0000694135,0.00024576916,0.57215524,0.0024418167,0.0002468896,0.0001646535,0.00003262427],"about_ca_topic_score_codex":0.048610847,"about_ca_topic_score_gemma":0.05004929,"teacher_disagreement_score":0.048610847,"about_ca_system_score_codex":0.00078933814,"about_ca_system_score_gemma":0.00046933274,"threshold_uncertainty_score":0.096655786},"labels":[],"label_agreement":null},{"id":"W2146472261","doi":"10.1093/jpe/rtn007","title":"Invasive Spartina and reduced sediments: Shanghai's dangerous silver bullet","year":2008,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Coastal wetland ecosystem dynamics","field":"Environmental Science","cited_by":28,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Government of British Columbia","funders":"Fudan University","keywords":"Spartina; Wetland; Salt marsh; Spartina alterniflora; Estuary; Marsh; Population; Ecology; Geography; Environmental science; Oceanography; Geology","score_opus":0.010585578686322261,"score_gpt":0.19365936079058016,"score_spread":0.1830737821042579,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2146472261","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":[0.2931219,0.47039112,0.0030806514,0.12176627,0.007904743,0.00007708348,0.0016643612,0.00032662041,0.10166727],"genre_scores_gemma":[0.6491136,0.2700117,0.0016894635,0.0264722,0.004043369,0.000040400384,0.0009434189,0.000060279985,0.04762559],"study_design_codex":"design_other","study_design_gemma":"observational","domain_scores_codex":[0.99988735,0.000019256637,0.000010299425,0.00002287923,0.000030859712,0.000029384939],"domain_scores_gemma":[0.999706,0.00006102558,0.000081463295,0.000018900066,0.00008313912,0.0000493482],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00037249757,0.00045491286,0.00026477248,0.00060481025,0.0004901287,0.0012771337,0.00021890749,0.0004634859,0.0044024675],"category_scores_gemma":[0.00041484134,0.00010505824,0.00027534185,0.00097132067,0.0007370674,0.0010077779,0.0007754114,0.00058239716,0.00026173526],"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":[0.0003592358,0.00006715843,0.09017668,0.005711088,0.00025696136,0.0039612823,0.008141072,0.0020838408,0.005466906,0.06531265,0.13860841,0.67985475],"study_design_scores_gemma":[0.000018747156,0.00039254455,0.14166519,0.0017865801,0.00020862262,0.0012884149,0.005646604,0.00036144277,0.0013616688,0.013174351,0.8340407,0.000055172837],"about_ca_topic_score_codex":0.023729408,"about_ca_topic_score_gemma":0.062875405,"teacher_disagreement_score":0.023729408,"about_ca_system_score_codex":0.0011821644,"about_ca_system_score_gemma":0.0019233329,"threshold_uncertainty_score":0.04718256},"labels":[],"label_agreement":null},{"id":"W2147042736","doi":"10.1093/jpe/rtt042","title":"The relationship between individual seed quality and maternal plant body size in crowded herbaceous vegetation","year":2013,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"Queen's University","funders":"","keywords":"Herbaceous plant; Biology; Competition (biology); Offspring; Intraspecific competition; Ecology; Vegetation (pathology); Population; Crowding; Demography","score_opus":0.026007891206133022,"score_gpt":0.26735509702828725,"score_spread":0.24134720582215421,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2147042736","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":[0.9998716,0.000012849548,0.000023116041,0.0000013695285,1.5192839e-7,6.556785e-7,0.00001698591,6.157045e-7,0.000072724295],"genre_scores_gemma":[0.99980825,0.00000862128,0.000049206057,0.0000013308676,3.588016e-7,8.3259107e-7,0.000042583073,6.740458e-7,0.00008821559],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998907,0.000014266787,0.000008693079,0.000036786823,0.000030499008,0.00001902622],"domain_scores_gemma":[0.9991448,0.0002696245,0.00029233377,0.00006414039,0.00007531015,0.0001538488],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019632113,0.0001407425,0.00019916167,0.0004520747,0.00038256132,0.0003616033,0.00018439243,0.00014427597,0.0009940815],"category_scores_gemma":[0.0012379675,0.00016131584,0.00010406111,0.0002722906,0.0005110423,0.00019817418,0.00028784992,0.00014671347,0.00008679148],"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":[0.00015163048,0.000017112134,0.9859439,0.000011593012,0.00005251305,0.00009782346,0.00058386306,0.00012655336,0.0116838105,0.000029102806,0.000015712953,0.0012862755],"study_design_scores_gemma":[6.310223e-7,0.000014747411,0.9997389,4.339729e-7,0.0000029793928,0.000027635608,0.000053980686,0.0000687941,0.000071453826,0.00000552427,0.000014174103,7.912929e-7],"about_ca_topic_score_codex":0.03802807,"about_ca_topic_score_gemma":0.13166934,"teacher_disagreement_score":0.03802807,"about_ca_system_score_codex":0.00054049434,"about_ca_system_score_gemma":0.00020579636,"threshold_uncertainty_score":0.07561344},"labels":[],"label_agreement":null},{"id":"W2151188240","doi":"10.1093/jpe/rtu014","title":"Divergent apparent temperature sensitivity of terrestrial ecosystem respiration","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":25,"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":"Lawrence Berkeley National Laboratory; Canadian Foundation for Climate and Atmospheric Sciences; Biological and Environmental Research; Oak Ridge National Laboratory; Natural Resources Canada; Natural Sciences and Engineering Research Council of Canada; Office of Science; Chinese Academy of Sciences; Microsoft Research; University of Virginia; U.S. Department of Energy; National Science Foundation","keywords":"Respiration; Ecosystem; Terrestrial ecosystem; Sensitivity (control systems); Environmental science; Ecology; Ecosystem respiration; Atmospheric sciences; Biology; Primary production; Botany; Geology","score_opus":0.007195765305564645,"score_gpt":0.19305868198039056,"score_spread":0.1858629166748259,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2151188240","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":[0.99640286,0.00036235276,0.002269771,0.000015135889,0.0000064742467,0.0000037696873,0.00030070738,0.000019151721,0.0006196539],"genre_scores_gemma":[0.998899,0.00007087686,0.0005638584,0.0000080029,0.0000041178355,0.0000031592147,0.00038144694,0.000007273053,0.00006211467],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99979144,0.000042639494,0.000015768237,0.00010020296,0.000028180672,0.000021828402],"domain_scores_gemma":[0.9996654,0.00009269688,0.000091552814,0.00004492465,0.00008472146,0.000020797142],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000332564,0.00024259918,0.00025521487,0.0004528148,0.00012273519,0.00036768417,0.00015602536,0.00015955552,0.00037905795],"category_scores_gemma":[0.00082031736,0.00015832765,0.0003430484,0.00051579764,0.00016903205,0.0004410311,0.00029555644,0.00016698476,0.00008416939],"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":[0.00014636258,0.000025504369,0.870294,0.0001137382,0.00036534123,0.00011500713,0.00025695885,0.009446243,0.09828993,0.00038041393,0.00018232949,0.020384192],"study_design_scores_gemma":[0.0000014495221,0.0000104206865,0.99333537,0.000003434477,0.000014188265,0.00006216494,0.00002547427,0.004577627,0.0015360059,0.00018504237,0.00024201306,0.0000068466234],"about_ca_topic_score_codex":0.0026328834,"about_ca_topic_score_gemma":0.0038586047,"teacher_disagreement_score":0.0026328834,"about_ca_system_score_codex":0.00017355838,"about_ca_system_score_gemma":0.00008454167,"threshold_uncertainty_score":0.005235076},"labels":[],"label_agreement":null},{"id":"W2153348773","doi":"10.1093/jpe/rtt068","title":"Does disturbance regime change community assembly of angiosperm plant communities in the boreal forest?","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":false,"ca_institutions":"University of Alberta","funders":"","keywords":"Species richness; Ecology; Phylogenetic diversity; Disturbance (geology); Biodiversity; Context (archaeology); Intermediate Disturbance Hypothesis; Plant community; Ecosystem; Biology; Species diversity; Community structure; Phylogenetic tree","score_opus":0.0208253767181624,"score_gpt":0.23547030821580262,"score_spread":0.21464493149764022,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2153348773","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":[0.97345465,0.024231749,0.00048057063,0.00025275507,0.000027672366,0.000011690051,0.00029498845,0.00001314463,0.0012328117],"genre_scores_gemma":[0.9937622,0.0054523638,0.0003437256,0.00012643143,0.00004483788,0.0000063451457,0.00017017264,0.0000027978517,0.00009126303],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9994467,0.00014219026,0.000081754995,0.00019261987,0.00008379614,0.000052961124],"domain_scores_gemma":[0.9974318,0.0005944176,0.001453237,0.00008905781,0.0002771005,0.00015443987],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0012741156,0.00020362646,0.00040076062,0.0021040877,0.00032138967,0.0011081061,0.0003474228,0.00049914856,0.0003470605],"category_scores_gemma":[0.0018767329,0.00018876379,0.0003940995,0.0014090905,0.00074924255,0.0013650696,0.0002504918,0.00017765193,0.00007779444],"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":[0.0001262816,0.00005335368,0.9395557,0.0011030433,0.000720149,0.0003226079,0.0013210768,0.00026558473,0.009189749,0.00025019285,0.0002351306,0.046857115],"study_design_scores_gemma":[0.000001449954,0.00003961701,0.9987759,0.000028387083,0.000044887078,0.00008054624,0.0003248355,0.000107571446,0.000074588286,0.0000692978,0.00044732448,0.0000055497617],"about_ca_topic_score_codex":0.007814351,"about_ca_topic_score_gemma":0.019207664,"teacher_disagreement_score":0.007814351,"about_ca_system_score_codex":0.0005674782,"about_ca_system_score_gemma":0.0003533407,"threshold_uncertainty_score":0.015537739},"labels":[],"label_agreement":null},{"id":"W2156666446","doi":"10.1093/jpe/rtr021","title":"Predicting plant invasiveness from native range size: clues from the Kashmir Himalaya","year":2011,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":"Université Laval","funders":"","keywords":"Invasive species; Range (aeronautics); Native plant; Alien; Introduced species; Flora (microbiology); Ecology; Alien species; Biology; Geography; Demography; Paleontology; Engineering","score_opus":0.018829624688333386,"score_gpt":0.21074260639111134,"score_spread":0.19191298170277796,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2156666446","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":[0.99769115,0.000106444364,0.0011973502,0.000044728138,0.0000015716895,0.000004898052,0.00011929802,0.0000227958,0.0008118468],"genre_scores_gemma":[0.99928814,0.00004830522,0.00045600586,0.000008304143,0.0000021442436,0.0000022225593,0.00012361455,0.0000022133897,0.00006911351],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997876,0.00007633551,0.000011990145,0.000052024334,0.000028500895,0.000043460044],"domain_scores_gemma":[0.9987368,0.000795229,0.00016062528,0.00008334989,0.00008405458,0.00013999314],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00086588075,0.00060283457,0.00041699744,0.001027946,0.0004383434,0.0010464959,0.00045152815,0.00038744955,0.00089443964],"category_scores_gemma":[0.0020176405,0.00024124845,0.0005150545,0.00089256366,0.00042667863,0.0007982019,0.00070551684,0.00039361385,0.00021578476],"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":[0.00026168334,0.00007271239,0.89767456,0.00008554811,0.0001523368,0.00080619217,0.0009912134,0.08260434,0.00806376,0.00078946206,0.00028746077,0.0082107745],"study_design_scores_gemma":[0.000015135183,0.000107131506,0.7505838,0.000020862364,0.00007267279,0.00047491313,0.0012895338,0.24466743,0.0010167195,0.0011715903,0.0005333719,0.000046864952],"about_ca_topic_score_codex":0.019151889,"about_ca_topic_score_gemma":0.025721233,"teacher_disagreement_score":0.019151889,"about_ca_system_score_codex":0.0005128151,"about_ca_system_score_gemma":0.00046155613,"threshold_uncertainty_score":0.03808081},"labels":[],"label_agreement":null},{"id":"W2160830479","doi":"10.1093/jpe/rtv028","title":"The evolution of plant reproductive ecology in China","year":2015,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":6,"is_retracted":false,"has_abstract":false,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Ecology; China; Biology; Plant ecology; Geography","score_opus":0.03287581439360842,"score_gpt":0.2119324276444982,"score_spread":0.17905661325088978,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2160830479","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":[0.9992987,0.00009606842,0.00005011312,0.000037051665,0.0000011678226,0.0000017008642,0.000014008105,0.0000030873753,0.0004980118],"genre_scores_gemma":[0.9997037,0.00004199649,0.000032656684,0.000010943117,0.0000017252237,0.0000011199094,0.000019497726,0.0000016924004,0.00018667588],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996401,0.00007458465,0.000014079736,0.000096007985,0.000049453636,0.00012576782],"domain_scores_gemma":[0.99934906,0.00014585382,0.00013360745,0.000056747267,0.00010712617,0.00020759269],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00088895875,0.0002955815,0.00029935566,0.0022743521,0.0011094274,0.0006831084,0.0007167855,0.00033616112,0.0017965442],"category_scores_gemma":[0.0008818901,0.00023682597,0.00033166574,0.0017696325,0.0014631198,0.0004136048,0.00089328096,0.00030103736,0.00012083742],"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":[0.0002914661,0.000111431305,0.91412205,0.00008398588,0.00033017594,0.00084996346,0.0070695556,0.0019907479,0.034553524,0.004008368,0.00037256477,0.036216218],"study_design_scores_gemma":[0.000008646881,0.00003230895,0.9981602,0.0000028817121,0.000018730794,0.000054946177,0.00034179207,0.0007012522,0.00017179386,0.00020837472,0.00029145856,0.000007716916],"about_ca_topic_score_codex":0.028552398,"about_ca_topic_score_gemma":0.06999197,"teacher_disagreement_score":0.028552398,"about_ca_system_score_codex":0.0021599692,"about_ca_system_score_gemma":0.0014721313,"threshold_uncertainty_score":0.05677241},"labels":[],"label_agreement":null},{"id":"W2165657456","doi":"10.1093/jpe/rtr046","title":"Interactive effects of water and nitrogen addition on soil microbial communities in a semiarid steppe","year":2011,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Soil Carbon and Nitrogen Dynamics","field":"Agricultural and Biological Sciences","cited_by":97,"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","keywords":"Steppe; Environmental science; Grassland; Grassland ecosystem; Ecosystem; Terrestrial ecosystem; Ecology; Climate change; Precipitation; Nitrogen cycle; Agroforestry; Nitrogen; Geography; Biology; Chemistry","score_opus":0.011297892655299978,"score_gpt":0.18679564688935973,"score_spread":0.17549775423405975,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2165657456","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":[0.9998869,0.000025726204,0.000033794535,0.0000034358666,5.66453e-7,0.0000020264038,0.000015698062,0.0000018235572,0.00003005745],"genre_scores_gemma":[0.9995035,0.000051219726,0.00021253871,0.000020998534,0.0000015014798,0.0000108132945,0.00009315631,0.0000013998307,0.00010474805],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99982834,0.00005526443,0.000013436534,0.00005108678,0.000026358459,0.000025476596],"domain_scores_gemma":[0.9997002,0.00010234247,0.00006913212,0.000014739431,0.000029248911,0.000084436455],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00027837552,0.00031731662,0.00030722888,0.00033176222,0.0003142393,0.00028369666,0.0002463317,0.0002682234,0.00028508843],"category_scores_gemma":[0.0002487864,0.0002101462,0.00022124757,0.00018402674,0.00035542538,0.0002570692,0.0003528945,0.00021158333,0.000042468204],"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":[0.0017190987,0.00025620626,0.072643116,0.00013668649,0.00012826957,0.0003418891,0.00030407638,0.0007658369,0.9180269,0.00004042094,0.00004799135,0.005589486],"study_design_scores_gemma":[0.000040716026,0.0011910388,0.9472424,0.000004912112,0.00007647495,0.00011717289,0.0003702334,0.004468462,0.046053004,0.00009334285,0.00031815222,0.000024176832],"about_ca_topic_score_codex":0.006627898,"about_ca_topic_score_gemma":0.014007432,"teacher_disagreement_score":0.006627898,"about_ca_system_score_codex":0.00061605586,"about_ca_system_score_gemma":0.0003302818,"threshold_uncertainty_score":0.013178647},"labels":[],"label_agreement":null},{"id":"W2166937320","doi":"10.1093/jpe/rtp016","title":"Assessing genetic diversity and structure of fragmented populations of eastern white pine (Pinus strobus) and western white pine (P. monticola) for conservation management","year":2009,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Yeasts and Rust Fungi Studies","field":"Biochemistry, Genetics and Molecular Biology","cited_by":36,"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":"National Eye Institute","keywords":"White (mutation); Pinus <genus>; Biology; Diversity (politics); Botany; Ecology; Agroforestry","score_opus":0.017626021968631785,"score_gpt":0.25017773705307916,"score_spread":0.23255171508444739,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2166937320","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":[0.9985519,0.00018241262,0.00035789807,0.000014026073,8.5853355e-7,0.000016461065,0.000290814,0.0000068948307,0.0005787505],"genre_scores_gemma":[0.9976635,0.000132086,0.0010292608,0.000013623356,0.0000014800494,0.000015168385,0.0008047196,0.00000261351,0.00033756183],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999858,0.000011899308,0.0000060059647,0.000041511208,0.00005440152,0.000028257313],"domain_scores_gemma":[0.9997093,0.000022416523,0.00008462069,0.000011327793,0.000100668556,0.000071618786],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00020400989,0.00019618022,0.00015224119,0.0012189244,0.00079389254,0.0003526268,0.000252545,0.00010646968,0.0009420894],"category_scores_gemma":[0.00045642033,0.00006800538,0.00010798684,0.00096938293,0.00021411566,0.00013385889,0.00027015546,0.00011536489,0.00006735932],"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":[0.00009249504,0.000041622134,0.9450367,0.000054247976,0.00008616793,0.00018933754,0.0010672066,0.0005847952,0.026332876,0.00014625487,0.00030003767,0.026068313],"study_design_scores_gemma":[0.0000025781942,0.000014551338,0.99892324,0.0000068023674,0.000010423013,0.000051076513,0.00024543938,0.00021573156,0.00021523262,0.000016471333,0.0002964463,0.0000019495671],"about_ca_topic_score_codex":0.48463845,"about_ca_topic_score_gemma":0.7736226,"teacher_disagreement_score":0.48463845,"about_ca_system_score_codex":0.0012264374,"about_ca_system_score_gemma":0.0012672498,"threshold_uncertainty_score":0.9636351},"labels":[],"label_agreement":null},{"id":"W2168826101","doi":"10.1093/jpe/rts010","title":"Applicability of remote sensing-based surface temperature regimes in determining deciduous phenology over boreal forest","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Remote Sensing in Agriculture","field":"Environmental Science","cited_by":25,"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 Calgary","funders":"National Aeronautics and Space Administration","keywords":"Deciduous; Phenology; Taiga; Environmental science; Ecology; Boreal; Climate change; Moderate-resolution imaging spectroradiometer; Physical geography; Atmospheric sciences; Geography; Biology","score_opus":0.007721002612574045,"score_gpt":0.22173276176929466,"score_spread":0.2140117591567206,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2168826101","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":[0.99766207,0.00031460993,0.00080896466,0.000008643365,0.000003089691,0.000013662474,0.00023173448,0.000017354829,0.00093985617],"genre_scores_gemma":[0.997969,0.00009884447,0.0015222882,0.000006046522,0.0000023155874,0.000005010706,0.000294612,0.0000026291718,0.00009937586],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998264,0.0000342177,0.000013465485,0.000044421085,0.000049918868,0.000031632022],"domain_scores_gemma":[0.9995894,0.00011834583,0.0000992768,0.000024431873,0.00010999026,0.000058553822],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0005494601,0.00026512437,0.0001598162,0.0007876033,0.00032851723,0.0005000458,0.00025462767,0.00016096643,0.00024347857],"category_scores_gemma":[0.0008074844,0.00012878698,0.00014578456,0.00063681026,0.00016685201,0.00023571764,0.00017168971,0.00010714932,0.000060652153],"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":[0.00013928898,0.000032534757,0.9722883,0.000033566084,0.000029249146,0.000036125624,0.0002358654,0.0022979681,0.009671578,0.00002912564,0.000057880625,0.015148449],"study_design_scores_gemma":[0.000002868706,0.000015633079,0.99652964,0.000003828209,0.000010677102,0.000028293085,0.00013817904,0.002541035,0.00056448975,0.000013056521,0.00014804512,0.000004250587],"about_ca_topic_score_codex":0.27921438,"about_ca_topic_score_gemma":0.5463575,"teacher_disagreement_score":0.27921438,"about_ca_system_score_codex":0.0008419164,"about_ca_system_score_gemma":0.0007609613,"threshold_uncertainty_score":0.55517834},"labels":[],"label_agreement":null},{"id":"W2170156532","doi":"10.1093/jpe/rtt065","title":"A novel photographic approach for monitoring the structural heterogeneity and diversity of grassland ecosystems","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"Université du Québec à Trois-Rivières","funders":"","keywords":"Grassland; Context (archaeology); Spatial heterogeneity; Ecology; Grassland ecosystem; Ecosystem; Diversity (politics); Biodiversity; Geography; Plant diversity; Beta diversity; Environmental resource management; Agroforestry; Environmental science; Biology; Archaeology","score_opus":0.015457747743794334,"score_gpt":0.22042312285460255,"score_spread":0.20496537511080823,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2170156532","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":[0.55201083,0.0013312877,0.43852368,0.00014084169,0.000108754335,0.0007568287,0.0017852472,0.0005701027,0.00477251],"genre_scores_gemma":[0.5191678,0.00060178316,0.4777662,0.000074333584,0.000059572158,0.000502269,0.00061745924,0.0000424841,0.0011680678],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996112,0.00013712759,0.000017345836,0.0001010219,0.00011294306,0.000020263],"domain_scores_gemma":[0.9992785,0.00023007205,0.00012989665,0.00018105553,0.000107486994,0.000073103045],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006050971,0.00038739914,0.00033514015,0.001557571,0.00026734947,0.00045644556,0.00046246822,0.0005545235,0.0017686463],"category_scores_gemma":[0.0010892504,0.00032537783,0.0003236046,0.0007412481,0.0003868946,0.0007227833,0.00052829855,0.0004634603,0.00021756745],"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":[0.0004242665,0.00043109263,0.037570227,0.0006606161,0.00020400043,0.00015093376,0.00029193913,0.007636021,0.8070541,0.0019361584,0.00082623964,0.14281441],"study_design_scores_gemma":[0.00028548288,0.0038248333,0.648776,0.00012172985,0.0006593217,0.0031478622,0.000546154,0.11859468,0.21015243,0.0028614704,0.010747233,0.00028272875],"about_ca_topic_score_codex":0.0011037971,"about_ca_topic_score_gemma":0.003977902,"teacher_disagreement_score":0.0017686463,"about_ca_system_score_codex":0.0003875014,"about_ca_system_score_gemma":0.00023271146,"threshold_uncertainty_score":0.0059167147},"labels":[],"label_agreement":null},{"id":"W2170685033","doi":"10.1093/jpe/rtt072","title":"Phylogenetic structure and phylogenetic diversity of angiosperm assemblages in forests along an elevational gradient in Changbaishan, China","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Diversity and Evolution","field":"Agricultural and Biological Sciences","cited_by":165,"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":"","keywords":"Phylogenetic diversity; Phylogenetic tree; Ecology; Biology; China; Phylogenetics; Biodiversity; Geography","score_opus":0.012227278534334947,"score_gpt":0.1874488562379897,"score_spread":0.17522157770365476,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2170685033","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":[0.9998024,0.00003973549,0.00003912244,0.0000067707924,4.9342555e-7,0.0000015066804,0.00003775019,0.0000012073932,0.00007106867],"genre_scores_gemma":[0.9997074,0.000018181989,0.000081656144,0.000005506439,8.642871e-7,0.000002556918,0.00013138259,5.63926e-7,0.000051838906],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99964976,0.00008501531,0.000031134925,0.00010115566,0.00005700994,0.000076005104],"domain_scores_gemma":[0.99933714,0.000117535026,0.00017922123,0.000046318,0.0001443069,0.0001755293],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006269042,0.0002617063,0.00026249397,0.0022853536,0.0007646522,0.0004652308,0.0003296693,0.00019590618,0.0004910083],"category_scores_gemma":[0.000731965,0.00021097336,0.000264353,0.0021197451,0.000646426,0.0002541147,0.00051335356,0.00019583521,0.000060313014],"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":[0.00005029635,0.000013661244,0.99025285,0.000017540682,0.000055046574,0.00007614807,0.0009954011,0.0001868654,0.0048320936,0.00007634556,0.000041281524,0.0034024783],"study_design_scores_gemma":[0.0000016071754,0.0000073641068,0.9994697,0.0000016179774,0.0000049955506,0.000017479008,0.000162504,0.00023722182,0.00003582593,0.000014401717,0.00004490254,0.0000023295365],"about_ca_topic_score_codex":0.057530787,"about_ca_topic_score_gemma":0.14381613,"teacher_disagreement_score":0.057530787,"about_ca_system_score_codex":0.000954517,"about_ca_system_score_gemma":0.000623768,"threshold_uncertainty_score":0.11439186},"labels":[],"label_agreement":null},{"id":"W2171607090","doi":"10.1093/jpe/rtt061","title":"Effects of elevated carbon dioxide concentration and soil temperature on the growth and biomass responses of mountain maple (Acer spicatum) seedlings to light availability","year":2013,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant responses to elevated CO2","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":"Lakehead University","funders":"","keywords":"Understory; Maple; Biomass (ecology); Aceraceae; Carbon dioxide; Environmental science; Global warming; Botany; Ecology; Biology; Climate change; Canopy","score_opus":0.005986104459142326,"score_gpt":0.1884938755333447,"score_spread":0.18250777107420238,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2171607090","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":[0.99973005,0.00007151571,0.00006183948,0.000007197182,0.0000020142068,0.0000017284311,0.000031850363,0.000004849364,0.00008890984],"genre_scores_gemma":[0.9994764,0.00004767218,0.00014464062,0.000023606259,0.0000019749657,0.000008651028,0.00009648301,0.0000035772243,0.00019700054],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999355,0.000013589958,0.0000050589438,0.00001765445,0.000011183327,0.000016979804],"domain_scores_gemma":[0.9997551,0.00006921561,0.00005121821,0.000015610442,0.000026896261,0.000081909944],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0000919127,0.00029397733,0.00023183093,0.00011049026,0.00016737386,0.00022503667,0.00014711749,0.00018249846,0.00069466553],"category_scores_gemma":[0.0001485627,0.00015704015,0.00018144923,0.00009344709,0.00015187162,0.00017295769,0.00020549029,0.00041457787,0.00009676376],"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":[0.000661353,0.00006660041,0.008036326,0.000040723546,0.000021576712,0.000095925076,0.000076749355,0.000164931,0.98969144,0.000019075442,0.000022100356,0.0011030426],"study_design_scores_gemma":[0.000050207243,0.0015461943,0.7623039,0.000008441728,0.000057301957,0.00016175074,0.00029277796,0.0023488493,0.23252568,0.00007323631,0.00060340844,0.000028216406],"about_ca_topic_score_codex":0.0023686162,"about_ca_topic_score_gemma":0.004092829,"teacher_disagreement_score":0.0023686162,"about_ca_system_score_codex":0.0002451006,"about_ca_system_score_gemma":0.0001352288,"threshold_uncertainty_score":0.004709661},"labels":[],"label_agreement":null},{"id":"W2277146011","doi":"10.1093/jpe/rtv079","title":"Weather or weathering? Growth of<i>Nothofagus dombeyi</i>on volcanic soils differing in nitrogen and phosphorus concentrations","year":2015,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":7,"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":"Fondo Nacional de Desarrollo Científico y Tecnológico; McGill University","keywords":"Weathering; Volcano; Nothofagus; Phosphorus; Soil water; Environmental science; Ecology; Nitrogen; Grassland; Agronomy; Geology; Biology; Soil science; Chemistry; Geochemistry","score_opus":0.011061937241125445,"score_gpt":0.2064030691941914,"score_spread":0.19534113195306596,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2277146011","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":[0.9996258,0.000028121107,0.000009825387,0.0000051137135,7.5666185e-7,0.0000013778331,0.000056842237,9.0058967e-7,0.0002712844],"genre_scores_gemma":[0.999332,0.000045268767,0.000044802044,0.0000119226315,0.0000016310726,0.0000038096443,0.00021345158,0.0000020528141,0.00034505138],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999943,0.000006258374,0.0000037484037,0.00002594029,0.0000049126706,0.000016183121],"domain_scores_gemma":[0.9998222,0.000039459097,0.000063879044,0.00001249187,0.000018911061,0.00004301649],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010422873,0.0001222508,0.00021194557,0.00019432207,0.0002865332,0.00035078858,0.000195991,0.00015154599,0.0009829815],"category_scores_gemma":[0.00017218743,0.00012423212,0.00011447672,0.00021100233,0.0002242983,0.00032137005,0.00027791355,0.00021994939,0.00021552446],"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":[0.0006455497,0.00016986692,0.5740114,0.00011215832,0.00006353447,0.0005719163,0.0015773724,0.00028330614,0.41220796,0.00015997382,0.00025512063,0.009941867],"study_design_scores_gemma":[0.0000028218635,0.000045338675,0.99811673,0.000002941295,0.000005071373,0.000047864265,0.0003319759,0.00010595894,0.0010763777,0.0000144294545,0.00024773573,0.0000027566423],"about_ca_topic_score_codex":0.014647885,"about_ca_topic_score_gemma":0.03832329,"teacher_disagreement_score":0.014647885,"about_ca_system_score_codex":0.00045420422,"about_ca_system_score_gemma":0.00014640922,"threshold_uncertainty_score":0.029125214},"labels":[],"label_agreement":null},{"id":"W2303738943","doi":"10.1093/jpe/rtv053","title":"Spatial and environmental determinants of plant species diversity in a temperate desert","year":2015,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":44,"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; Rural Development Administration","keywords":"Temperate climate; Ecology; Abiotic component; Diversity (politics); Climate change; Plant diversity; Ecosystem; Geography; Species diversity; Biodiversity; Biology","score_opus":0.02019987786824871,"score_gpt":0.21425749621330892,"score_spread":0.19405761834506022,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2303738943","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":[0.9997943,0.00002708463,0.00006255519,0.0000021335977,1.7277833e-7,7.0841475e-7,0.000030702588,0.0000010806485,0.00008136427],"genre_scores_gemma":[0.99979717,0.000018552433,0.00008528383,0.000002094085,7.984017e-7,0.000001675065,0.00007280603,6.5782797e-7,0.00002099561],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99972373,0.000085825835,0.000028536415,0.00007185743,0.000049954127,0.000040117993],"domain_scores_gemma":[0.9992617,0.00023804484,0.00022713617,0.00005059878,0.00009140246,0.00013113879],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003877823,0.0001408894,0.0002539079,0.0008427856,0.0002430219,0.00031876477,0.00015792582,0.0001401149,0.0004923621],"category_scores_gemma":[0.0007826038,0.00013948942,0.0002327261,0.00078155147,0.00036372544,0.000184991,0.00037840207,0.0001222599,0.00007029428],"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":[0.000053654705,0.000014990117,0.98917633,0.00001903452,0.00007299677,0.00007974729,0.00033560186,0.000369763,0.0076792818,0.000036494155,0.00001883757,0.0021433062],"study_design_scores_gemma":[8.788365e-7,0.000012333738,0.99943846,0.0000011691159,0.0000044885014,0.00004296227,0.00014366787,0.0002417821,0.000065651984,0.000020551985,0.000026865726,0.0000012472764],"about_ca_topic_score_codex":0.0037494989,"about_ca_topic_score_gemma":0.00703729,"teacher_disagreement_score":0.0037494989,"about_ca_system_score_codex":0.00014320086,"about_ca_system_score_gemma":0.0001329543,"threshold_uncertainty_score":0.007455349},"labels":[],"label_agreement":null},{"id":"W2323856307","doi":"10.1093/jpe/rtv070","title":"Distribution of shrublands in relation to soil and climate in mid-subtropical China","year":2015,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":16,"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; Chinese Academy of Sciences","keywords":"Shrubland; Subtropics; China; Distribution (mathematics); Environmental science; Climate change; Ecology; Geography; Climatology; Physical geography; Geology; Mathematics; Biology; Ecosystem","score_opus":0.009128930133604028,"score_gpt":0.2308097700837162,"score_spread":0.22168083995011217,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2323856307","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":[0.9995881,0.00011783596,0.000028002565,0.000006961155,8.110386e-7,0.0000018464603,0.000065113374,0.0000023094888,0.00018912702],"genre_scores_gemma":[0.9996816,0.000063673615,0.000050072213,0.00000572448,0.0000018428436,0.0000025213849,0.00011453067,6.299171e-7,0.000079478166],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998784,0.000016699447,0.000016619737,0.000033776494,0.00002332429,0.000031131796],"domain_scores_gemma":[0.99972636,0.00003051046,0.00009049517,0.000019488945,0.00005469528,0.000078476296],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000238897,0.00022796569,0.00014761619,0.0012157208,0.00025742775,0.0002861859,0.00015224687,0.00008612014,0.00051363005],"category_scores_gemma":[0.0002515422,0.00010548669,0.00019839557,0.0008540896,0.0003241363,0.00018408992,0.000332603,0.000071411385,0.000054492746],"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":[0.00003919126,0.000009629681,0.98828727,0.000032631546,0.0000683831,0.00016465098,0.0006173444,0.00018171419,0.0053617144,0.000075996264,0.000060632912,0.0051008444],"study_design_scores_gemma":[7.481602e-7,0.000004257572,0.9996923,0.0000012689112,0.000003912113,0.00002942699,0.000092899034,0.00007913293,0.000037037218,0.00000927347,0.00004850275,0.0000011664512],"about_ca_topic_score_codex":0.015171141,"about_ca_topic_score_gemma":0.041250456,"teacher_disagreement_score":0.015171141,"about_ca_system_score_codex":0.00025473497,"about_ca_system_score_gemma":0.00024437674,"threshold_uncertainty_score":0.030165672},"labels":[],"label_agreement":null},{"id":"W2326208334","doi":"10.1093/jpe/rtw030","title":"Germination response of desert annuals to shrub facilitation is species specific but not ecotypic","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":false,"ca_institutions":"York University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Germination; Shrub; Biology; Understory; Abiotic component; Larrea; Deserts and xeric shrublands; Botany; Horticulture; Agronomy; Ecology; Habitat; Canopy","score_opus":0.0169678763978962,"score_gpt":0.2434327283149486,"score_spread":0.2264648519170524,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2326208334","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":[0.9998411,0.00001858087,0.000033265995,0.0000016254421,3.9237125e-7,6.833268e-7,0.000012694723,0.0000023926061,0.00008928187],"genre_scores_gemma":[0.9997329,0.0000151099675,0.0000703149,0.0000075093158,0.0000011592778,0.0000019320457,0.00005846301,0.0000024589892,0.000109972796],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99992704,0.000012617852,0.0000053490307,0.000030097155,0.000011673412,0.0000131850375],"domain_scores_gemma":[0.9996555,0.000054770844,0.00010277087,0.000038508217,0.000046161014,0.000102449994],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015135379,0.00013159313,0.00016161513,0.0001896109,0.00015885646,0.00017204123,0.00013428216,0.00008607646,0.00060162885],"category_scores_gemma":[0.00022689102,0.00012933562,0.00010875548,0.000053478885,0.00014643966,0.0000671961,0.00018087558,0.00016755766,0.000100648715],"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":[0.00045088804,0.00007683214,0.23298615,0.00005292226,0.00008102703,0.00011907079,0.00025487595,0.00023855855,0.76088107,0.000054264354,0.000082066945,0.0047222436],"study_design_scores_gemma":[0.000004713416,0.00012899263,0.99490994,0.0000016119727,0.000009749702,0.00008666922,0.0000778514,0.0002442792,0.0043978347,0.000019265459,0.00011686356,0.0000024097478],"about_ca_topic_score_codex":0.0015080946,"about_ca_topic_score_gemma":0.0063280133,"teacher_disagreement_score":0.0015080946,"about_ca_system_score_codex":0.00014787076,"about_ca_system_score_gemma":0.00008294506,"threshold_uncertainty_score":0.00299865},"labels":[],"label_agreement":null},{"id":"W2329097666","doi":"10.1093/jpe/rtt077","title":"Phylogenetic community ecology: integrating community ecology and evolutionary biology","year":2014,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","cited_by":28,"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":"Ecology; Community; Evolutionary ecology; Ecology and Evolutionary Biology; Phylogenetic tree; Biology; Applied ecology; Evolutionary physiology; Plant ecology; Ecosystem; Host (biology)","score_opus":0.044441141217844114,"score_gpt":0.2308549843288656,"score_spread":0.18641384311102147,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2329097666","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":[0.14638683,0.033768136,0.7985271,0.004489203,0.00043345304,0.00047341306,0.0008861283,0.0007746807,0.0142609235],"genre_scores_gemma":[0.75591516,0.015256377,0.22399454,0.0010642492,0.0007936096,0.0003909395,0.00061967765,0.00018215615,0.0017834348],"study_design_codex":"design_other","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9972499,0.0015718113,0.0000914081,0.0005352439,0.0003981037,0.00015345747],"domain_scores_gemma":[0.994666,0.002622304,0.00083045603,0.00040404376,0.00072725344,0.00075001764],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.005305726,0.0014121964,0.002120301,0.009270295,0.0012516064,0.0045253523,0.0016173312,0.0020224035,0.002082089],"category_scores_gemma":[0.009747848,0.0008649419,0.0011039154,0.0060885726,0.0038672136,0.0086141545,0.0046490314,0.0017815942,0.00043746122],"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":[0.00010315732,0.0003832562,0.2168922,0.004099511,0.0026140965,0.00070947927,0.007075192,0.054750953,0.011814789,0.23388965,0.0065785376,0.4610891],"study_design_scores_gemma":[0.00003233053,0.00032659408,0.18798395,0.0009002153,0.0003411495,0.0012081716,0.0036102606,0.19491754,0.00097054883,0.57890356,0.030438937,0.0003667061],"about_ca_topic_score_codex":0.006676476,"about_ca_topic_score_gemma":0.006101279,"teacher_disagreement_score":0.009270295,"about_ca_system_score_codex":0.0022825599,"about_ca_system_score_gemma":0.0019163833,"threshold_uncertainty_score":0.028059661},"labels":[],"label_agreement":null},{"id":"W2330083828","doi":"10.1093/jpe/rtr037","title":"Ecosystem classification and inventory maps as surrogates for ground beetle assemblages in boreal forest","year":2012,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Forest Ecology and Biodiversity Studies","field":"Agricultural and Biological Sciences","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":"Natural Resources Canada; University of Alberta","funders":"Canadian Forest Service; Natural Sciences and Engineering Research Council of Canada; U.S. Forest Service","keywords":"Biodiversity; Taiga; Canopy; Environmental science; Tree canopy; Ecosystem; Geography; Ecology; Ground beetle; Forest ecology; Land cover; Remote sensing; Forestry; Land use; Habitat; Biology","score_opus":0.03521641397497568,"score_gpt":0.23053629017288824,"score_spread":0.19531987619791255,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2330083828","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":[0.9987436,0.00008300809,0.0004792846,0.000017463675,0.0000037270356,0.0000045850757,0.0002565471,0.000013341785,0.00039858214],"genre_scores_gemma":[0.9984756,0.000026469079,0.0010338534,0.000006463481,0.0000036340236,0.00000475116,0.0003774908,0.000003421943,0.00006836123],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99881375,0.00084268267,0.000045618115,0.00012492828,0.0001174896,0.000055580524],"domain_scores_gemma":[0.99085206,0.0050416472,0.0022509524,0.0007191078,0.00079189753,0.00034433726],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0031326194,0.0002778545,0.00018228455,0.0007402717,0.00016734705,0.0008525134,0.00025162232,0.00022135433,0.000465694],"category_scores_gemma":[0.010179786,0.00016913492,0.00017098736,0.0006560126,0.00026514407,0.0006759311,0.00038569095,0.0002161105,0.00011852422],"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":[0.0005879431,0.000100303674,0.9746507,0.000028552568,0.00011272381,0.000025299503,0.00015212005,0.0043809465,0.00097460364,0.00019301209,0.00021592696,0.018577972],"study_design_scores_gemma":[0.00002680662,0.00017598539,0.964728,0.000014190448,0.000061299266,0.0000712699,0.00014452905,0.033848062,0.00047845402,0.00024717674,0.0001912281,0.000013022819],"about_ca_topic_score_codex":0.016291447,"about_ca_topic_score_gemma":0.03363312,"teacher_disagreement_score":0.016291447,"about_ca_system_score_codex":0.00041618905,"about_ca_system_score_gemma":0.00024994212,"threshold_uncertainty_score":0.032393217},"labels":[],"label_agreement":null},{"id":"W2331907372","doi":"10.1093/jpe/rtw025","title":"Relationships between soil seed banks and above-ground vegetation along a disturbance gradient in the W National Park trans-boundary biosphere reserve, West Africa","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":56,"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":"Consortium of International Agricultural Research Centers; Volkswagen Foundation","keywords":"Soil seed bank; Vegetation (pathology); Environmental science; Ecological succession; National park; Biomass (ecology); Habitat; Seedling; Ecology; Disturbance (geology); Restoration ecology; Agroforestry; Agronomy; Biology","score_opus":0.024305883027309558,"score_gpt":0.23392113800370004,"score_spread":0.2096152549763905,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2331907372","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":[0.9998882,0.00002197925,0.000010251124,0.0000030556387,2.6897945e-7,0.0000016615469,0.000019177245,2.4007676e-7,0.000055178683],"genre_scores_gemma":[0.99986327,0.000021779604,0.000031872532,0.000002327655,4.6745555e-7,0.0000025298427,0.000031726144,2.0932877e-7,0.000045770907],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99987364,0.000026966798,0.000012290827,0.000030159044,0.000022392984,0.000034590375],"domain_scores_gemma":[0.99945074,0.00009724902,0.00026736534,0.00002012165,0.000049961018,0.00011454539],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001518163,0.00012860353,0.00012386187,0.0006267656,0.0003401854,0.00036427236,0.00015310111,0.00013790674,0.00067053357],"category_scores_gemma":[0.00058164354,0.00014316278,0.0000782209,0.00061895524,0.00038791166,0.00023665623,0.00032633558,0.00013834864,0.000077287776],"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":[0.00005659281,0.00003671844,0.99395317,0.000012973675,0.00001838963,0.00022851882,0.0008727264,0.0000377717,0.0028163746,0.000018060777,0.00003346509,0.0019153656],"study_design_scores_gemma":[7.622376e-7,0.000017118376,0.9993061,0.0000022147005,0.0000021759652,0.00007816863,0.000452554,0.00004074435,0.000043122403,0.0000030788417,0.00005315621,7.791461e-7],"about_ca_topic_score_codex":0.013684805,"about_ca_topic_score_gemma":0.061705712,"teacher_disagreement_score":0.013684805,"about_ca_system_score_codex":0.00026398656,"about_ca_system_score_gemma":0.00018519184,"threshold_uncertainty_score":0.027210295},"labels":[],"label_agreement":null},{"id":"W2336489867","doi":"10.1093/jpe/rtv058","title":"Stochastic processes play more important roles in driving the dynamics of rarer species","year":2015,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":29,"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":"China Scholarship Council; McGill University; Georgia Institute of Technology","keywords":"Structuring; Ecology; Stochastic dynamics; Stochastic process; Null model; Stochastic modelling; Computer science; Biology; Statistical physics; Mathematics; Economics; Statistics; Physics","score_opus":0.01064699830325387,"score_gpt":0.22766284964926187,"score_spread":0.217015851346008,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2336489867","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":[0.9105611,0.00050140737,0.08692721,0.0004094653,0.000030220162,0.000024643723,0.00018382368,0.000098546225,0.001263695],"genre_scores_gemma":[0.9910279,0.00013701599,0.008348984,0.0000679471,0.000024527923,0.00001604297,0.00015008434,0.000030960782,0.0001964967],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.998735,0.00035368063,0.00010309826,0.0005713426,0.00015335044,0.0000835221],"domain_scores_gemma":[0.9918412,0.004985816,0.0016805984,0.00082419603,0.0003471966,0.0003210122],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0033365279,0.00045100163,0.00078867277,0.0012333785,0.0010410344,0.0014948524,0.00057204417,0.0008367399,0.0016923517],"category_scores_gemma":[0.010511376,0.0003724562,0.0011956026,0.0007689994,0.0016560511,0.0018962928,0.0010182221,0.0011803899,0.00016612699],"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":[0.0002855607,0.00020695331,0.6884082,0.0008368232,0.0010359761,0.0009299476,0.004227202,0.05657561,0.11566768,0.07408263,0.00059822056,0.057145145],"study_design_scores_gemma":[0.00011025949,0.0002619803,0.6588155,0.00011286636,0.00054597744,0.0011592995,0.0017443259,0.20288077,0.010053963,0.11750974,0.0065305075,0.00027481077],"about_ca_topic_score_codex":0.0039227153,"about_ca_topic_score_gemma":0.008412695,"teacher_disagreement_score":0.0039227153,"about_ca_system_score_codex":0.0005927944,"about_ca_system_score_gemma":0.0005174199,"threshold_uncertainty_score":0.017645478},"labels":[],"label_agreement":null},{"id":"W2350007215","doi":"","title":"ESTABLISHMENT OF XISHUANGBANNA TROPICAL FOREST DYNAMICS PLOT:SPECIES COMPOSITIONS AND SPATIAL DISTRIBUTION PATTERNS","year":2008,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Forest ecology and management","field":"Environmental Science","cited_by":27,"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":"Diameter at breast height; Geography; Biodiversity; Forestry; Canopy; Ecology; Rainforest; Tree canopy; Forest dynamics; Forest ecology; Old-growth forest; Agroforestry; Ecosystem; Biology","score_opus":0.007316435307305189,"score_gpt":0.19059475211223761,"score_spread":0.18327831680493242,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2350007215","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":[0.996775,0.00005537653,0.00054754846,0.000011642285,0.0000051495867,0.00026093403,0.0015189567,0.000040539344,0.00078498584],"genre_scores_gemma":[0.9874193,0.00005175475,0.006256986,0.000023565382,0.000014338617,0.0006669997,0.0040301955,0.000012612269,0.0015241482],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997491,0.000030979547,0.00001373911,0.00011814381,0.00004297407,0.00004500372],"domain_scores_gemma":[0.9996954,0.000023226536,0.000060970433,0.000025092351,0.000060514132,0.00013468337],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00032468527,0.00047988282,0.0002668366,0.0015812545,0.0008491591,0.00032338902,0.0004955461,0.00022738738,0.0018747458],"category_scores_gemma":[0.00014514015,0.00025077138,0.0001989527,0.0010864706,0.00040277635,0.00020501591,0.00050168857,0.0002193199,0.00034298154],"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":[0.00034512897,0.00055620226,0.9372615,0.00008592406,0.000052818228,0.00047797314,0.001938791,0.00039494003,0.039363157,0.00012339234,0.00087787677,0.018522285],"study_design_scores_gemma":[0.000013105983,0.0001573883,0.997154,0.0000047432695,0.000009073402,0.000077731995,0.0004631693,0.00048410078,0.0007030659,0.0000122086185,0.0009141484,0.0000073835276],"about_ca_topic_score_codex":0.0148508,"about_ca_topic_score_gemma":0.0577031,"teacher_disagreement_score":0.0148508,"about_ca_system_score_codex":0.0007537266,"about_ca_system_score_gemma":0.0005974259,"threshold_uncertainty_score":0.029528737},"labels":[],"label_agreement":null},{"id":"W2439405596","doi":"10.1093/jpe/rtw057","title":"Topographic species–habitat associations of tree species in a heterogeneous tropical karst seasonal rain forest, China","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":88,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Lakehead University","funders":"National Natural Science Foundation of China; Lakehead University","keywords":"Habitat; Ecology; Karst; Subtropics; Biodiversity; Geography; Biology; Tropical and subtropical moist broadleaf forests","score_opus":0.011068017854855188,"score_gpt":0.2163928813857905,"score_spread":0.2053248635309353,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2439405596","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":[0.9999052,0.000007941081,0.000015957596,0.0000014376635,1.8149255e-7,9.978883e-7,0.000025017585,6.637588e-7,0.00004239476],"genre_scores_gemma":[0.99983287,0.000009342303,0.00004044481,0.0000014389709,4.914888e-7,0.0000019332363,0.00008276755,3.7702515e-7,0.000030293002],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99980277,0.00002849187,0.00002431363,0.00006400762,0.00003547372,0.00004487653],"domain_scores_gemma":[0.9996111,0.00006531116,0.0001388769,0.000036982045,0.00005588272,0.00009191746],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026666748,0.0002259752,0.00024458795,0.0014980735,0.00049627287,0.00033472537,0.00019338586,0.00011062711,0.0005847786],"category_scores_gemma":[0.0004473472,0.00016592104,0.00029137923,0.0014625945,0.00047494343,0.00025832787,0.0004300675,0.00009508076,0.0000562663],"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":[0.000030437306,0.00001033057,0.9952201,0.000010640855,0.000034373516,0.000087857334,0.00034317392,0.00017597082,0.002224679,0.000025900705,0.000025503068,0.0018109547],"study_design_scores_gemma":[9.922741e-7,0.000007640724,0.99960774,5.743082e-7,0.000003853387,0.000026758806,0.000102711776,0.00019997326,0.000023078424,0.0000079336105,0.000017539618,0.0000012609486],"about_ca_topic_score_codex":0.019528203,"about_ca_topic_score_gemma":0.051454782,"teacher_disagreement_score":0.019528203,"about_ca_system_score_codex":0.00041577787,"about_ca_system_score_gemma":0.00032765238,"threshold_uncertainty_score":0.03882909},"labels":[],"label_agreement":null},{"id":"W2474749895","doi":"10.1093/jpe/rtw071","title":"Population isolation shapes plant genetics, phenotype and germination in naturally patchy ecosystems","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Botany and Plant Ecology Studies","field":"Agricultural and Biological Sciences","cited_by":14,"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 Montréal; McGill University; Université Laval; Espace pour la vie","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Biology; Population; Ecology; Isolation by distance; Conservation genetics; Phenotypic trait; Population genetics; Local adaptation; Biological dispersal; Evolutionary biology; Genetic structure; Phenotype; Genetics; Genetic variation; Allele; Gene","score_opus":0.01150770480437207,"score_gpt":0.1983595280664054,"score_spread":0.1868518232620333,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2474749895","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":[0.99956113,0.000049880742,0.00018095532,0.0000069056055,4.0423785e-7,0.000001995608,0.000026484211,0.0000042481593,0.00016800573],"genre_scores_gemma":[0.9994723,0.000031907228,0.00029141927,0.000010301386,9.670092e-7,0.0000029283588,0.000059731316,0.000004341645,0.00012617774],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99984074,0.000030783234,0.00000921703,0.00006549765,0.000028674172,0.000025064975],"domain_scores_gemma":[0.99958795,0.00010774221,0.00013766921,0.00003369077,0.000057509,0.000075464784],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026094465,0.00015138756,0.00021131278,0.0006165445,0.00037182632,0.00038490692,0.00020711722,0.00020044473,0.00069197896],"category_scores_gemma":[0.00046397815,0.00012855374,0.00012878698,0.00031266233,0.0005849874,0.00016655191,0.0002778431,0.00024577102,0.000085349435],"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":[0.00029371315,0.00009899333,0.756521,0.000057670648,0.0001641548,0.00035975542,0.0009392728,0.0016207973,0.22436316,0.0002896964,0.00016936708,0.015122454],"study_design_scores_gemma":[0.0000023429823,0.000026537049,0.9987092,0.0000017541432,0.000007052787,0.00006919663,0.00008958433,0.00054814236,0.0003962943,0.000044581746,0.00010137594,0.0000039137444],"about_ca_topic_score_codex":0.035259124,"about_ca_topic_score_gemma":0.11247453,"teacher_disagreement_score":0.035259124,"about_ca_system_score_codex":0.0008211746,"about_ca_system_score_gemma":0.0005290184,"threshold_uncertainty_score":0.07010782},"labels":[],"label_agreement":null},{"id":"W2514093563","doi":"10.1093/jpe/rtw087","title":"Soil fertilization does not alter plant architectural effects on arthropod communities","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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 British Columbia","funders":"Adolph C. and Mary Sprague Miller Institute for Basic Research in Science, University of California Berkeley","keywords":"Biology; Intraspecific competition; Arthropod; Shrub; Ecology; Abundance (ecology); Herbivore; Plant community; Species richness; Nutrient","score_opus":0.008071115025502791,"score_gpt":0.21649281911766546,"score_spread":0.20842170409216268,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2514093563","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":[0.9991223,0.00017771253,0.00010642387,0.000017721299,0.0000039007987,0.00000539975,0.00006861269,0.000010190821,0.00048766937],"genre_scores_gemma":[0.9990695,0.00008278374,0.00032841333,0.000046620913,0.0000032077626,0.000008511539,0.000111992726,0.000005286427,0.00034373498],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99970007,0.00005122995,0.000026686324,0.000102084734,0.000051682247,0.000068280446],"domain_scores_gemma":[0.9991937,0.00015710019,0.0002666771,0.00006916685,0.00009422124,0.00021909163],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00018868282,0.00034431246,0.00027922,0.00020085645,0.0004105559,0.00050118455,0.00037691425,0.00033542383,0.0015270241],"category_scores_gemma":[0.00052397215,0.0003531762,0.00018520084,0.00013846463,0.0004380443,0.0002565704,0.0005454859,0.00034294868,0.00018191559],"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":[0.0007764366,0.0001410513,0.10017638,0.0001722686,0.0001125586,0.0001975687,0.00013669948,0.00023111871,0.8904816,0.000063689746,0.00009375877,0.0074169217],"study_design_scores_gemma":[0.000026527663,0.00074160344,0.9729234,0.000011081294,0.000049546685,0.00014993471,0.00018023867,0.0004928304,0.024515977,0.00006489514,0.00083309336,0.000010913418],"about_ca_topic_score_codex":0.005473382,"about_ca_topic_score_gemma":0.026976528,"teacher_disagreement_score":0.005473382,"about_ca_system_score_codex":0.00060575374,"about_ca_system_score_gemma":0.0003432728,"threshold_uncertainty_score":0.010883033},"labels":[],"label_agreement":null},{"id":"W2564890402","doi":"10.1093/jpe/rtw128","title":"Altitudinal patterns of maximum plant height on the Tibetan Plateau","year":2016,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":false,"ca_institutions":"University of Alberta","funders":"University of British Columbia","keywords":"Altitude (triangle); Herbaceous plant; Ecology; Plateau (mathematics); Elevation (ballistics); Range (aeronautics); Biology; Woody plant; Plant species; Physical geography; Geography; Mathematics","score_opus":0.011875720588621005,"score_gpt":0.21012029191699208,"score_spread":0.1982445713283711,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2564890402","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":[0.99917406,0.00006325584,0.0000934032,0.000009028088,8.5279294e-7,0.0000010183172,0.00027535477,0.000007064918,0.00037591407],"genre_scores_gemma":[0.9991297,0.000020302206,0.00010178799,0.0000030670985,0.0000022102336,0.0000022774339,0.0006099718,0.0000022767304,0.00012838526],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99977833,0.00006393334,0.000013535791,0.000063626656,0.000027877079,0.000052663905],"domain_scores_gemma":[0.9992151,0.00023605683,0.00018039087,0.00006919604,0.00016721306,0.00013198293],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00067596365,0.00016396362,0.00020499107,0.0011823198,0.00030414958,0.00043142482,0.00023839506,0.00020251294,0.0014151967],"category_scores_gemma":[0.000951121,0.00009056563,0.00020292212,0.0017461918,0.00023917413,0.00019207507,0.00028398298,0.00018360715,0.00018944392],"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":[0.00011423618,0.000019196288,0.98717636,0.000029223424,0.000069616006,0.00009926393,0.0006439499,0.0010897483,0.0030069426,0.00020714519,0.00020672583,0.0073375856],"study_design_scores_gemma":[0.0000012243507,0.000008985884,0.99889565,0.0000035680882,0.0000048425536,0.000019840481,0.000111656635,0.00079229026,0.000035444442,0.000025424883,0.00009899874,0.0000020197165],"about_ca_topic_score_codex":0.014929346,"about_ca_topic_score_gemma":0.025465142,"teacher_disagreement_score":0.014929346,"about_ca_system_score_codex":0.000250498,"about_ca_system_score_gemma":0.00019870946,"threshold_uncertainty_score":0.029684901},"labels":[],"label_agreement":null},{"id":"W2587773184","doi":"10.1093/jpe/rtx009","title":"Constraints on treeline advance in a warming climate: a test of the reproduction limitation hypothesis","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","cited_by":38,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":true,"ca_institutions":"Queen's University","funders":"Royal Geographical Society; Royal Canadian Geographical Society","keywords":"Tundra; Seed dispersal; Ecology; Ecotone; Biological dispersal; Taiga; Climate change; Black spruce; Biology; Ecosystem; Habitat; Population","score_opus":0.03244867083728338,"score_gpt":0.2542718717623021,"score_spread":0.22182320092501873,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2587773184","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":[0.99908173,0.00006157252,0.00014361879,0.00003141109,0.0000010281037,0.0000031293062,0.000045451336,0.0000030585832,0.0006289814],"genre_scores_gemma":[0.99978286,0.000017661354,0.0000860134,0.000021482338,0.0000020332427,0.0000037177406,0.00003721215,0.0000011954163,0.000047828078],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996567,0.00011930447,0.000020111082,0.000104591396,0.000038523358,0.00006075332],"domain_scores_gemma":[0.99757224,0.0009423787,0.00086250907,0.00022733916,0.00011986286,0.00027560245],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00076503376,0.00020372006,0.0002827009,0.00033392853,0.00045314291,0.0006108484,0.00054408,0.00045132745,0.0019864484],"category_scores_gemma":[0.0020820948,0.00014598126,0.0002436546,0.00030694605,0.0011156459,0.0005891007,0.00056600943,0.00031642482,0.00011380746],"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":[0.00044121259,0.00013600203,0.9648756,0.00005504173,0.00014016434,0.00023456123,0.000661534,0.0011620214,0.025923481,0.00086815597,0.00013108595,0.005371099],"study_design_scores_gemma":[0.000008147253,0.00007856195,0.9982553,0.0000024087296,0.00001115617,0.000031923253,0.00026258387,0.00086704065,0.00017694807,0.00018444011,0.00011659093,0.0000047675117],"about_ca_topic_score_codex":0.016357604,"about_ca_topic_score_gemma":0.020009939,"teacher_disagreement_score":0.016357604,"about_ca_system_score_codex":0.0005646521,"about_ca_system_score_gemma":0.00035665327,"threshold_uncertainty_score":0.032524765},"labels":[],"label_agreement":null},{"id":"W2590763270","doi":"10.1093/jpe/rtx013","title":"Species abundance distributions as a proxy for the niche–neutrality continuum","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","field":"Environmental Science","cited_by":17,"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":"Special Fund for Agro-scientific Research in the Public Interest; National Natural Science Foundation of China; McGill University","keywords":"Relative species abundance; Ecology; Abundance (ecology); Rare species; Ecological niche; Neutral theory of molecular evolution; Interspecific competition; Niche; Biological dispersal; Common species; Community; Relative abundance distribution; Species diversity; Biology; Ecosystem; Population; Habitat","score_opus":0.017800279307879325,"score_gpt":0.2741404124135302,"score_spread":0.2563401331056509,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2590763270","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":[0.98122865,0.00008883753,0.017008651,0.00005012222,0.0000033963406,0.000019021745,0.00019185118,0.000081802886,0.0013276299],"genre_scores_gemma":[0.99726546,0.000015573407,0.0025205666,0.000008641833,0.0000019696427,0.000015944395,0.00009955197,0.000005357813,0.000066975066],"study_design_codex":"observational","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99962485,0.00013882597,0.000027376056,0.00010617371,0.000066523855,0.000036278176],"domain_scores_gemma":[0.9973961,0.0015197721,0.00045541016,0.00026314147,0.00015628843,0.00020936313],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0011239086,0.0002751991,0.0002628679,0.0011822871,0.00035317775,0.000597648,0.00049008714,0.00035330822,0.0011384257],"category_scores_gemma":[0.0041254763,0.00021150387,0.00035855523,0.0005744745,0.0008888867,0.0007368325,0.00073622644,0.00048979337,0.000098790784],"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":[0.00056264346,0.00021443311,0.45977652,0.0002164435,0.00037905556,0.00052185595,0.0012490127,0.40350145,0.0744748,0.03251737,0.00051038107,0.026076017],"study_design_scores_gemma":[0.000081168706,0.000379027,0.2742498,0.000022071275,0.00006022272,0.0008283824,0.0004387202,0.67762566,0.0064456956,0.037461556,0.0023239905,0.00008373857],"about_ca_topic_score_codex":0.001245543,"about_ca_topic_score_gemma":0.0010896537,"teacher_disagreement_score":0.001245543,"about_ca_system_score_codex":0.000591032,"about_ca_system_score_gemma":0.00016534742,"threshold_uncertainty_score":0.005943835},"labels":[],"label_agreement":null},{"id":"W2611873680","doi":"10.1093/jpe/rtx030","title":"Simulated N and S deposition affected soil chemistry and understory plant communities in a boreal forest in western Canada","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Soil Carbon and Nitrogen Dynamics","field":"Agricultural and Biological Sciences","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":"University of Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; University of Alberta; Egg Farmers of Canada","keywords":"Understory; Shrub; Taiga; Boreal; Deposition (geology); Environmental science; Plant community; Forest floor; Soil pH; Ecology; Agronomy; Chemistry; Soil water; Biology; Canopy; Ecological succession","score_opus":0.012077535661333991,"score_gpt":0.19678761725104757,"score_spread":0.18471008158971358,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2611873680","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":[0.99944526,0.000023612143,0.000055308836,0.000016992955,0.0000016992557,0.000010206069,0.00025477805,0.000011243403,0.00018085656],"genre_scores_gemma":[0.9989961,0.000036600046,0.00031133217,0.000028239254,8.705132e-7,0.000013043554,0.00042487358,0.0000023597918,0.00018662508],"study_design_codex":"observational","study_design_gemma":"simulation_or_modeling","domain_scores_codex":[0.99982005,0.00002486561,0.00000849645,0.000052144343,0.0000352971,0.000059241713],"domain_scores_gemma":[0.99959487,0.000059199403,0.000047696885,0.000020585236,0.00012207538,0.00015566828],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028529807,0.00050892093,0.00030503178,0.000226978,0.0009310334,0.00046841422,0.00082551,0.00043741136,0.00050328014],"category_scores_gemma":[0.0004747072,0.00023511564,0.00030934034,0.0003643503,0.00044676446,0.00021486559,0.0003047315,0.00027574695,0.000053871736],"study_design_candidate":"simulation_or_modeling","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":[0.0026118988,0.0009874873,0.8305235,0.00013676427,0.00028918695,0.0006448484,0.000681607,0.08704796,0.065458424,0.00028442225,0.0015424348,0.009791544],"study_design_scores_gemma":[0.00028729756,0.00055040926,0.9004925,0.000013728372,0.00010791798,0.00007292186,0.00079033175,0.09219203,0.0042490833,0.00012709033,0.0010567958,0.00006000609],"about_ca_topic_score_codex":0.90580875,"about_ca_topic_score_gemma":0.95241183,"teacher_disagreement_score":0.09419125,"about_ca_system_score_codex":0.009975886,"about_ca_system_score_gemma":0.0051453705,"threshold_uncertainty_score":0.18949187},"labels":[],"label_agreement":null},{"id":"W2766261865","doi":"10.1093/jpe/rtx060","title":"Biodiversity, dynamics, and impact of chakras on the Ecuadorian Amazon","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Cocoa and Sweet Potato Agronomy","field":"Agricultural and Biological Sciences","cited_by":32,"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":"European Commission","keywords":"Species richness; Amazon rainforest; Biodiversity; Deforestation (computer science); Diversity index; Geography; Ecology; Secondary forest; Forestry; Floristics; Ecological succession; Agroforestry; Species diversity; Diameter at breast height; Abandonment (legal); Alpha diversity; Biology","score_opus":0.018836592824522942,"score_gpt":0.22153161169227223,"score_spread":0.2026950188677493,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2766261865","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":[0.99949193,0.00019095502,0.000008670549,0.000017707647,5.332803e-7,0.0000022566162,0.00002636178,0.0000010213064,0.0002606138],"genre_scores_gemma":[0.99970716,0.00015312571,0.000035453388,0.000004714719,0.0000014664543,0.0000030875976,0.00004053347,4.859009e-7,0.00005401188],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998217,0.000044754885,0.000017060065,0.00003348612,0.000026263686,0.0000567923],"domain_scores_gemma":[0.99957544,0.00006810429,0.00019738342,0.000022853841,0.00006816504,0.00006814106],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003040733,0.00024507302,0.00018946451,0.0009502722,0.0005156474,0.0006386273,0.00029657682,0.00016317272,0.00073917734],"category_scores_gemma":[0.0009139851,0.000099634584,0.00010832171,0.00092241087,0.00046887257,0.00039889183,0.00065074617,0.00015802703,0.00004692853],"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":[0.00015339864,0.000081728685,0.9677833,0.00008314035,0.000059086316,0.0010135878,0.0049658255,0.00019804438,0.0038983738,0.00018882933,0.00011911578,0.021455701],"study_design_scores_gemma":[0.000002175702,0.000023561153,0.99757427,0.0000064540077,0.000008637562,0.00013017633,0.0017841157,0.000103935476,0.00005142231,0.000016220994,0.00029687147,0.0000021662775],"about_ca_topic_score_codex":0.03962775,"about_ca_topic_score_gemma":0.0659822,"teacher_disagreement_score":0.03962775,"about_ca_system_score_codex":0.0005959657,"about_ca_system_score_gemma":0.00021042168,"threshold_uncertainty_score":0.07879418},"labels":[],"label_agreement":null},{"id":"W2781261949","doi":"10.1093/jpe/rtx071","title":"Environmental landscape determinants of maximum forest canopy height of boreal forests","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Fire effects on ecosystems","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":"University of British Columbia; University of Alberta","funders":"Alberta Agriculture and Forestry; Alberta Environment and Parks","keywords":"Taiga; Canopy; Geography; Environmental science; Ecology; Tree canopy; Boreal; Agroforestry; Forestry; Biology","score_opus":0.00600663183512914,"score_gpt":0.21289416063603261,"score_spread":0.20688752880090347,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2781261949","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":[0.9995198,0.0000548359,0.000044952096,0.0000097771635,4.8888984e-7,0.0000010358043,0.00010892345,0.0000034650807,0.00025672812],"genre_scores_gemma":[0.9997292,0.000021465132,0.00005913896,0.0000042715656,7.62348e-7,8.882662e-7,0.00013139434,0.0000010727376,0.00005188495],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988246,0.00001543485,0.0000068346944,0.0000313178,0.000023730017,0.000040208593],"domain_scores_gemma":[0.9996171,0.00007987415,0.00011525397,0.000018587765,0.00007405342,0.00009523613],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021824124,0.00012631222,0.00013925512,0.00040326908,0.0003907385,0.0005203709,0.00017320112,0.00011530121,0.00063794927],"category_scores_gemma":[0.0005775044,0.000079719066,0.00014178955,0.00056371564,0.00035482176,0.00016523678,0.0002093888,0.00014910298,0.000048396938],"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":[0.000032013053,0.000014341296,0.9955936,0.000005732365,0.000020770647,0.000039990144,0.00011644618,0.0002916394,0.0013216573,0.000053201562,0.00006559244,0.0024449122],"study_design_scores_gemma":[2.9454952e-7,0.0000027371,0.999783,6.3206437e-7,0.0000014754512,0.000014296248,0.000058707363,0.00008930854,0.0000108111935,0.0000095309315,0.000028493996,6.923331e-7],"about_ca_topic_score_codex":0.24541819,"about_ca_topic_score_gemma":0.5396285,"teacher_disagreement_score":0.24541819,"about_ca_system_score_codex":0.0008764768,"about_ca_system_score_gemma":0.0005614578,"threshold_uncertainty_score":0.4879794},"labels":[],"label_agreement":null},{"id":"W2781379631","doi":"10.1093/jpe/rtx073","title":"The function of floral orientation in bluebells: interactions with pollinators and rain in two species of<i>Mertensia</i>(Boraginaceae)","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant and animal studies","field":"Agricultural and Biological Sciences","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 Ottawa","funders":"Natural Sciences and Engineering Research Council of Canada; University of Ottawa","keywords":"Pollinator; Biology; Abiotic component; Attraction; Pollen; Ecology; Selection (genetic algorithm); Boraginaceae; Pollination; Botany","score_opus":0.026758062948850362,"score_gpt":0.23981784860156888,"score_spread":0.21305978565271852,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2781379631","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":[0.9997881,0.000043538803,0.00003331516,0.000005697133,4.1856484e-7,0.000002195592,0.000024685296,0.000003262559,0.00009866409],"genre_scores_gemma":[0.9993905,0.00002496944,0.00025547255,0.000025536063,0.0000012342458,0.000009297853,0.00011876499,0.0000041785306,0.00017007272],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9998265,0.00003282676,0.00000880059,0.0000807772,0.000021901127,0.00002915649],"domain_scores_gemma":[0.9994568,0.00010637699,0.0002639264,0.000029703897,0.000045738736,0.00009749514],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00023765543,0.00028718874,0.0003236524,0.00054001366,0.00051722437,0.00045109104,0.00037925818,0.00037004266,0.0006361197],"category_scores_gemma":[0.0003019794,0.0003053757,0.00024168653,0.0001990618,0.00043358296,0.00024749633,0.0004852666,0.0004593013,0.00010441925],"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":[0.00054397725,0.00022340126,0.34701195,0.000097389486,0.000101649995,0.0001531997,0.0017036846,0.00016789662,0.64432263,0.00006949547,0.000074355456,0.005530358],"study_design_scores_gemma":[0.000006476473,0.00008982637,0.99800104,0.0000031408206,0.000009290984,0.00004570466,0.00015475554,0.0001525383,0.0014254908,0.000008174546,0.000099909215,0.000003662842],"about_ca_topic_score_codex":0.012011808,"about_ca_topic_score_gemma":0.042475343,"teacher_disagreement_score":0.012011808,"about_ca_system_score_codex":0.00077354594,"about_ca_system_score_gemma":0.0002100861,"threshold_uncertainty_score":0.02388376},"labels":[],"label_agreement":null},{"id":"W2793638452","doi":"10.1093/jpe/rtx031","title":"Invasive European frogbit (Hydrocharis morsus-ranae L.) in North America: an updated review 2003–16","year":2017,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Coastal wetland ecosystem dynamics","field":"Environmental Science","cited_by":28,"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":"Geography; Forestry; Environmental science; Biology","score_opus":0.010661296701215116,"score_gpt":0.22258127159477642,"score_spread":0.2119199748935613,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2793638452","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":[0.0008762043,0.9976882,0.00009170224,0.00030354594,0.00025982808,0.000008052558,0.00010370446,0.000009273167,0.0006594635],"genre_scores_gemma":[0.001616888,0.99704933,0.00032037625,0.00027371655,0.00013625901,0.000012186539,0.0001959994,0.0000027761441,0.0003924153],"study_design_codex":"design_other","study_design_gemma":"not_applicable","domain_scores_codex":[0.9995671,0.00006340238,0.00014888377,0.00008187736,0.00011145032,0.000027382177],"domain_scores_gemma":[0.9983645,0.0005977474,0.0004215273,0.00003021265,0.000506469,0.0000794026],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00080468226,0.00073643203,0.001893378,0.0044802316,0.00029347383,0.0011302582,0.0007457258,0.0010007861,0.0023644497],"category_scores_gemma":[0.0013800438,0.00045134913,0.0011019973,0.005570546,0.0003305915,0.0018920385,0.00049542286,0.0007545243,0.0006581242],"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":[0.0001603063,0.00009426114,0.0020592248,0.07623728,0.00053619256,0.0009831145,0.00044684252,0.00029259268,0.0036709232,0.00041769812,0.03363491,0.8814667],"study_design_scores_gemma":[0.000029189681,0.00037087128,0.017483138,0.024098122,0.0019660164,0.004705123,0.0005189306,0.0001240995,0.0009951564,0.00027464706,0.9493668,0.00006790008],"about_ca_topic_score_codex":0.0074085766,"about_ca_topic_score_gemma":0.018608516,"teacher_disagreement_score":0.0074085766,"about_ca_system_score_codex":0.0007140508,"about_ca_system_score_gemma":0.0029299872,"threshold_uncertainty_score":0.01473093},"labels":[],"label_agreement":null},{"id":"W2905369933","doi":"10.1093/jpe/rty053","title":"Intraspecific trait variation improves the detection of deterministic community assembly processes in early successional forests, but not in late successional forests","year":2018,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":false,"ca_institutions":"The Scarborough Hospital; University of Toronto","funders":"Natural Sciences and Engineering Research Council of Canada; National Natural Science Foundation of China; McGill University","keywords":"Intraspecific competition; Ecological succession; Ecology; Trait; Interspecific competition; Context (archaeology); Habitat; Variation (astronomy); Similarity (geometry); Biology; Computer science","score_opus":0.013232836885718285,"score_gpt":0.2475407797669892,"score_spread":0.23430794288127094,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2905369933","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":[0.9938034,0.00010961839,0.005643476,0.000015484336,0.0000029616078,0.0000062352115,0.00006364679,0.000025606943,0.00032959756],"genre_scores_gemma":[0.9985043,0.000013056568,0.0013658155,0.000006729456,0.0000015629399,0.0000022863114,0.0000620391,0.0000038519174,0.000040390525],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99832886,0.0006452013,0.00009766115,0.00064207794,0.00014196907,0.00014415113],"domain_scores_gemma":[0.99548966,0.002634579,0.0007281948,0.0005010218,0.00033806814,0.0003084578],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0029876174,0.00040651378,0.00045902317,0.0010816086,0.0007108993,0.00082997227,0.00032762834,0.00038820767,0.00071534014],"category_scores_gemma":[0.006740238,0.00027997943,0.0006256754,0.0005818698,0.00063538534,0.0008508851,0.00076621794,0.0004528014,0.00013267138],"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":[0.00019238175,0.000086096465,0.9486297,0.000064866115,0.00030785846,0.000076335826,0.00046205445,0.0025250209,0.023757912,0.00029015524,0.000062604806,0.023544885],"study_design_scores_gemma":[0.000004727371,0.000068162655,0.9725841,0.000008025172,0.00007141995,0.00006960979,0.0001335725,0.024625102,0.0017618394,0.0005136036,0.00014406246,0.000015722746],"about_ca_topic_score_codex":0.0070306784,"about_ca_topic_score_gemma":0.017752906,"teacher_disagreement_score":0.0070306784,"about_ca_system_score_codex":0.00042251855,"about_ca_system_score_gemma":0.0004340672,"threshold_uncertainty_score":0.015800238},"labels":[],"label_agreement":null},{"id":"W2946639005","doi":"10.1093/jpe/rtz025","title":"Patterns and ecological determinants of woody plant height in eastern Eurasia and its relation to primary productivity","year":2019,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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 British Columbia","funders":"Peking University; China Scholarship Council; Fundamental Research Funds for the Central Universities; Chinese Academy of Sciences; National Natural Science Foundation of China","keywords":"Evergreen; Ecology; Deciduous; Shrub; Productivity; Biomass (ecology); Biology; Woody plant; Climate change; Ecosystem; Biodiversity; Primary production; Geography","score_opus":0.010443351761124315,"score_gpt":0.2233566955015709,"score_spread":0.21291334374044657,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W2946639005","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":[0.99965084,0.00008489655,0.00006581453,0.000006506882,6.259849e-7,4.794053e-7,0.000081251026,0.0000015239973,0.000108119144],"genre_scores_gemma":[0.999764,0.000019847997,0.00006731212,0.0000025774718,0.0000016984364,6.637651e-7,0.00010597846,5.844197e-7,0.00003731251],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988437,0.00002582823,0.000012617048,0.000048386988,0.000013587411,0.000015138017],"domain_scores_gemma":[0.99952984,0.00011373759,0.00018178388,0.000032670196,0.00007692481,0.00006492016],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00039879602,0.00012465527,0.00013248352,0.00046349544,0.00011683274,0.00027774298,0.00014991828,0.00010465031,0.00064980815],"category_scores_gemma":[0.00049560773,0.00008082747,0.0001164005,0.0004965755,0.00016822426,0.00020506202,0.00023934912,0.00010402548,0.0000634196],"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":[0.000026080397,0.0000064053165,0.99388427,0.000013322939,0.00005598569,0.00005783513,0.0001282857,0.00014644985,0.0022357062,0.000035043337,0.0000404165,0.003370082],"study_design_scores_gemma":[5.725546e-7,0.000003742123,0.99968517,0.0000011934383,0.0000034441716,0.000021638702,0.00004112445,0.00017044148,0.000027259064,0.000012315247,0.00003270283,5.495512e-7],"about_ca_topic_score_codex":0.0036776178,"about_ca_topic_score_gemma":0.006382288,"teacher_disagreement_score":0.0036776178,"about_ca_system_score_codex":0.00012400725,"about_ca_system_score_gemma":0.000097981974,"threshold_uncertainty_score":0.007312417},"labels":[],"label_agreement":null},{"id":"W3014709376","doi":"10.1093/jpe/rtaa014","title":"Tallow tree allocates contrasting secondary chemicals in response to varying environments along elevational gradients","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant biochemistry and biosynthesis","field":"Biochemistry, Genetics and Molecular Biology","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":"University of British Columbia","funders":"National Key Research and Development Program of China; National Natural Science Foundation of China","keywords":"Abiotic component; Herbivore; Biology; Elevation (ballistics); Ecology; Botany; Tannin","score_opus":0.010186514498604957,"score_gpt":0.20847873573114725,"score_spread":0.1982922212325423,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3014709376","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":[0.99957484,0.000056646313,0.000120451616,0.000007333867,7.3999604e-7,0.0000020025943,0.00005269453,0.0000038777566,0.00018145723],"genre_scores_gemma":[0.9994111,0.000039130475,0.00014156876,0.000014575378,0.0000014213557,0.0000039454367,0.00014303726,0.0000026296664,0.0002425859],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998869,0.00001621937,0.00000637701,0.000041821913,0.000019648269,0.00002891424],"domain_scores_gemma":[0.99978393,0.000020600874,0.0000626891,0.000015413489,0.00004995442,0.00006738861],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00013198874,0.00020145351,0.00024518193,0.00053898466,0.0004217994,0.0004308985,0.00013127242,0.0001423459,0.00073343515],"category_scores_gemma":[0.00012541714,0.00014036203,0.00014992373,0.00046284663,0.00023906834,0.00026941905,0.00038165794,0.00024825588,0.00009390112],"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":[0.00029929218,0.00006739346,0.5583791,0.00007745245,0.00011672074,0.00016381132,0.0011225005,0.00032514316,0.4310805,0.00024180349,0.00013755292,0.007988821],"study_design_scores_gemma":[0.0000013158957,0.00003105782,0.9980944,0.0000013733024,0.000009934764,0.00002229208,0.00023197534,0.00018167954,0.0012517491,0.000029231074,0.00014140071,0.00000363768],"about_ca_topic_score_codex":0.005006549,"about_ca_topic_score_gemma":0.013343278,"teacher_disagreement_score":0.005006549,"about_ca_system_score_codex":0.0003128448,"about_ca_system_score_gemma":0.00019972379,"threshold_uncertainty_score":0.00995481},"labels":[],"label_agreement":null},{"id":"W3038497319","doi":"10.1093/jpe/rtaa037","title":"Diverse plant mixtures sustain a greater arbuscular mycorrhizal fungi spore viability than monocultures after 12 years","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Mycorrhizal Fungi and Plant Interactions","field":"Agricultural and Biological 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":false,"ca_institutions":"Agriculture and Agri-Food Canada","funders":"Deutsche Forschungsgemeinschaft; Friedrich-Schiller-Universität Jena","keywords":"Monoculture; Biology; Propagule; Spore; Species richness; Glomeromycota; Agronomy; Biomass (ecology); Botany; Biodiversity; Obligate; Symbiosis; Mycorrhiza; Ecology","score_opus":0.011509882388048558,"score_gpt":0.19136608905385877,"score_spread":0.1798562066658102,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3038497319","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":[0.99746084,0.00056406244,0.0010009794,0.000019378489,0.000017200822,0.00004717479,0.0003996457,0.00004274131,0.00044788216],"genre_scores_gemma":[0.9954619,0.000116325,0.0021877603,0.00005627508,0.000012355229,0.000116135896,0.0010095562,0.000020949936,0.0010187327],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99935824,0.000089906076,0.000069350506,0.0002513747,0.00011450967,0.0001166602],"domain_scores_gemma":[0.99907744,0.000108349355,0.00018650398,0.00011239624,0.00015266846,0.00036263894],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0003640127,0.00058541715,0.0006230509,0.0005817722,0.0005883421,0.00070399593,0.00032102742,0.00035615228,0.001171948],"category_scores_gemma":[0.00039000015,0.00023422335,0.00038866716,0.00029436016,0.00020142626,0.00041576716,0.0007768065,0.0006037773,0.00028177362],"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":[0.00055825786,0.00020962697,0.006393652,0.00006576144,0.000057618177,0.000063628606,0.00007999118,0.00003553696,0.9882758,0.000021390862,0.00004508456,0.0041934834],"study_design_scores_gemma":[0.00010647002,0.006211254,0.62918353,0.000047775633,0.00025039993,0.00065640185,0.00083056133,0.0012990735,0.35581312,0.00019486074,0.0053381226,0.000068452144],"about_ca_topic_score_codex":0.0008668949,"about_ca_topic_score_gemma":0.0021977026,"teacher_disagreement_score":0.001171948,"about_ca_system_score_codex":0.0003320261,"about_ca_system_score_gemma":0.00026344947,"threshold_uncertainty_score":0.003920555},"labels":[],"label_agreement":null},{"id":"W3081330656","doi":"10.1093/jpe/rtaa056","title":"The decoupling between gas exchange and water potential of<i>Cinnamomum camphora</i>seedlings during drought recovery and its relation to ABA accumulation in leaves","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Water Relations and Carbon Dynamics","field":"Environmental Science","cited_by":28,"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":"Education Department of Jiangxi Province; National Natural Science Foundation of China","keywords":"Cinnamomum camphora; Abscisic acid; Stomatal conductance; Photosynthesis; Drought tolerance; Proline; Transpiration; Biology; Drought stress; Horticulture; Botany","score_opus":0.012295753910245538,"score_gpt":0.21361837058852493,"score_spread":0.2013226166782794,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3081330656","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":[0.9987733,0.00018579843,0.00025470753,0.000042246535,0.0000050116178,0.000007816239,0.00031567333,0.0000245353,0.0003909003],"genre_scores_gemma":[0.998582,0.00007269266,0.00020921644,0.000034025292,0.0000025597358,0.000014299434,0.00044188532,0.000009217048,0.0006339529],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999455,0.000003378177,0.000003088104,0.000023731085,0.0000078921075,0.000016398959],"domain_scores_gemma":[0.9998273,0.00002332837,0.000044008193,0.000016073527,0.000025390393,0.000063916654],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008562717,0.00026164443,0.0002599256,0.00024177898,0.00028140048,0.0003346191,0.00023917528,0.0002560511,0.0010365315],"category_scores_gemma":[0.0001006394,0.00023508046,0.00020025906,0.00017284081,0.00024243617,0.00036300995,0.00019209943,0.0008653294,0.00012439404],"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":[0.00017699215,0.000017290888,0.0018790357,0.00002351141,0.000007097546,0.000045695353,0.000048260415,0.00003508044,0.9972222,0.0000286404,0.000020925527,0.00049527135],"study_design_scores_gemma":[0.00003742138,0.00052002544,0.58983994,0.000015142071,0.00004772989,0.00027214483,0.00039551212,0.00193743,0.40560684,0.00017779678,0.0011151729,0.000034918103],"about_ca_topic_score_codex":0.005218972,"about_ca_topic_score_gemma":0.004125042,"teacher_disagreement_score":0.005218972,"about_ca_system_score_codex":0.00043494714,"about_ca_system_score_gemma":0.0002028351,"threshold_uncertainty_score":0.010377228},"labels":[],"label_agreement":null},{"id":"W3106755438","doi":"10.1093/jpe/rtaa086","title":"CO2 stimulation and response mechanisms vary with light supply in boreal conifers","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant responses to elevated CO2","field":"Agricultural and Biological 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":false,"ca_institutions":"Ontario Forest Research Institute; Ministry of Natural Resources and Forestry; Lakehead University","funders":"Natural Sciences and Engineering Research Council of Canada; Lakehead University","keywords":"Black spruce; Growing season; Photosynthesis; Transpiration; Stomatal conductance; Taiga; Botany; Horticulture; Picea abies; Boreal; Biology; Ecology","score_opus":0.011474674126824094,"score_gpt":0.19403644623198754,"score_spread":0.18256177210516344,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3106755438","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":[0.9994161,0.00015605349,0.000104439154,0.000011604395,0.000001797316,0.000004054527,0.000084331754,0.000009327115,0.00021230459],"genre_scores_gemma":[0.9992004,0.000059643917,0.00013974952,0.000029329234,0.00000236421,0.000011085285,0.00023122269,0.000004851438,0.0003213551],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99991024,0.000011875918,0.000004977333,0.000037473746,0.000011734359,0.000023709843],"domain_scores_gemma":[0.99982977,0.000033215154,0.0000367902,0.000012138312,0.000029050396,0.00005890298],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010839889,0.00021556103,0.00023326458,0.00022540925,0.00033888963,0.00027927003,0.00020877797,0.0002066111,0.00060048886],"category_scores_gemma":[0.00014231565,0.00020028789,0.00015276542,0.00015965155,0.00017615595,0.00021901082,0.00022000205,0.0002973849,0.00009149077],"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":[0.0009471315,0.00013692009,0.08386819,0.0000774488,0.000039417417,0.00010590136,0.00020012129,0.0002623507,0.9099959,0.000040505627,0.00010226362,0.00422388],"study_design_scores_gemma":[0.000009605604,0.00012764015,0.9882834,0.0000021317742,0.000011402467,0.00007097404,0.00012365505,0.00037176482,0.01072668,0.000023399623,0.00024290083,0.000006315696],"about_ca_topic_score_codex":0.013218344,"about_ca_topic_score_gemma":0.023257058,"teacher_disagreement_score":0.013218344,"about_ca_system_score_codex":0.0005024902,"about_ca_system_score_gemma":0.00020808261,"threshold_uncertainty_score":0.026282787},"labels":[],"label_agreement":null},{"id":"W3117024067","doi":"10.1093/jpe/rtaa103","title":"Temporal variation and its drivers in the elemental traits of four boreal plant species","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":false,"ca_institutions":"Memorial University of Newfoundland","funders":"Natural Sciences and Engineering Research Council of Canada; Memorial University of Newfoundland; Mitacs; Canada Foundation for Innovation; Parks Canada","keywords":"Intraspecific competition; Biology; Boreal; Taiga; Deciduous; Ecology; Growing degree-day; Ecological stoichiometry; Herbivore; Nutrient; Phenology","score_opus":0.017951264320443326,"score_gpt":0.2071318777343837,"score_spread":0.18918061341394038,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3117024067","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":[0.99909484,0.00007944265,0.0004223123,0.0000096985805,0.0000018807832,0.0000040859795,0.00019851603,0.000009893584,0.00017923058],"genre_scores_gemma":[0.9992563,0.000016629827,0.0003545158,0.0000056856647,0.000002420693,0.0000095988835,0.00028054966,0.0000044833164,0.00006978713],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.999589,0.000098110606,0.000034212353,0.0001965723,0.00005111792,0.000031036594],"domain_scores_gemma":[0.998582,0.00046341371,0.0005535233,0.0001444977,0.0001590471,0.000097493255],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0010495236,0.00022898606,0.00025872176,0.00085599197,0.00040609608,0.0005293886,0.0003019238,0.00024558807,0.0007937215],"category_scores_gemma":[0.0013145279,0.00019261756,0.0005017581,0.0007201092,0.00040983208,0.00041972692,0.00044152077,0.00030445275,0.0000888705],"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":[0.00011344346,0.00003904226,0.9759734,0.00003338121,0.00018554114,0.00005639742,0.00037334053,0.00072289555,0.018261656,0.00012731506,0.00009089665,0.004022685],"study_design_scores_gemma":[0.0000013662116,0.000023908768,0.9985807,0.0000014468185,0.000016343158,0.000046853525,0.00009095327,0.0008751517,0.00018768758,0.000038071674,0.00013334579,0.000004225988],"about_ca_topic_score_codex":0.006157055,"about_ca_topic_score_gemma":0.013762811,"teacher_disagreement_score":0.006157055,"about_ca_system_score_codex":0.00035378954,"about_ca_system_score_gemma":0.00020377408,"threshold_uncertainty_score":0.012242377},"labels":[],"label_agreement":null},{"id":"W3122108711","doi":"10.1093/jpe/rtaa063","title":"Biochar and alternate partial root-zone irrigation greatly enhance the effectiveness of mulberry in remediating lead-contaminated soils","year":2020,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant Stress Responses and Tolerance","field":"Agricultural and Biological 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":"Lakehead University","funders":"Chinese Academy of Agricultural Sciences","keywords":"Biochar; Irrigation; Soil water; Bioconcentration; Contamination; Chemistry; Agronomy; Phytoremediation; Environmental chemistry; Soil Pollutants; Soil contamination; Environmental science; Bioaccumulation; Biology; Ecology; Soil science; Heavy metals; Pyrolysis","score_opus":0.013597694024263989,"score_gpt":0.22447314707741584,"score_spread":0.21087545305315183,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3122108711","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":[0.99721366,0.00060182984,0.0012305743,0.000059440976,0.000017562292,0.000018260153,0.0001436379,0.000070225185,0.00064474705],"genre_scores_gemma":[0.99501836,0.00040539113,0.0027507783,0.000061441875,0.0000072334,0.00002060374,0.00017349371,0.000025825018,0.001536902],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9998869,0.000012672043,0.000009996535,0.000042333908,0.000024579012,0.000023582015],"domain_scores_gemma":[0.99987805,0.000016223916,0.000033627126,0.000013254992,0.000028472828,0.00003030963],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00008298912,0.0003616292,0.00049017684,0.00019077188,0.00024132343,0.00039090263,0.00026389543,0.00024469805,0.0010264502],"category_scores_gemma":[0.00015044815,0.00013234981,0.0002891625,0.00013663904,0.00016549947,0.0003455038,0.000289865,0.00032150824,0.00018564958],"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":[0.00013385336,0.00003050873,0.00056112435,0.00007765279,0.000008992623,0.000028355342,0.000013702532,0.00004893872,0.99676895,0.00001665034,0.000018625704,0.002292706],"study_design_scores_gemma":[0.000020507197,0.0010285376,0.030015742,0.0000131326815,0.000065235225,0.0001591327,0.00008151255,0.00091371645,0.9643903,0.00005646974,0.0032441642,0.000011707706],"about_ca_topic_score_codex":0.0011514846,"about_ca_topic_score_gemma":0.0028774817,"teacher_disagreement_score":0.0011514846,"about_ca_system_score_codex":0.00020067058,"about_ca_system_score_gemma":0.00022624317,"threshold_uncertainty_score":0.0034338236},"labels":[],"label_agreement":null},{"id":"W3182865230","doi":"10.1093/jpe/rtab073","title":"Substrate availability regulates the suppressive effects of Canada goldenrod invasion on soil respiration","year":2021,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Soil Carbon and Nitrogen Dynamics","field":"Agricultural and Biological Sciences","cited_by":16,"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":"Jiangsu University Foundation; China Postdoctoral Science Foundation; National Natural Science Foundation of China","keywords":"Soil respiration; Soil carbon; Environmental science; Solidago canadensis; Vegetation (pathology); Ecosystem; Cycling; Substrate (aquarium); Agronomy; Riparian zone; Autotroph; Carbon cycle; Ecology; Respiration; Invasive species; Biology; Soil water; Botany; Forestry; Geography; Habitat","score_opus":0.009075833618312306,"score_gpt":0.18255683177946286,"score_spread":0.17348099816115056,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3182865230","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":[0.9979842,0.00040053856,0.00017620898,0.000040889347,0.000009533074,0.00000817996,0.00021869582,0.000019925541,0.0011418676],"genre_scores_gemma":[0.99861455,0.00014991191,0.0001545307,0.000049791226,0.0000020356329,0.000006863942,0.0002543959,0.0000080546015,0.0007598807],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9998265,0.000010428101,0.000009796088,0.000061378545,0.00003332743,0.00005863617],"domain_scores_gemma":[0.99968195,0.000028118422,0.00007025568,0.00001813254,0.000068239635,0.00013316948],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00010067626,0.00045150684,0.0003103033,0.00021987075,0.00039510144,0.0005085066,0.00035125756,0.00023199036,0.00097022793],"category_scores_gemma":[0.00020408772,0.00021627334,0.00032969506,0.0001383621,0.0003442637,0.00023820103,0.00049769145,0.00036938657,0.00015205536],"study_design_candidate":"observational","study_design_consensus":null,"about_ca_topic_candidate":true,"about_ca_topic_consensus":false,"about_ca_system_candidate":false,"about_ca_system_consensus":false,"study_design_scores_codex":[0.00031097533,0.000045315155,0.027529834,0.00008739716,0.000030468218,0.00013973286,0.000103150334,0.00018937326,0.9692002,0.000083950734,0.00016397207,0.0021155814],"study_design_scores_gemma":[0.000019650659,0.00014177569,0.937116,0.000016217587,0.000053884494,0.000109177985,0.00038786163,0.0026995332,0.05768152,0.00008123073,0.0016615291,0.00003162792],"about_ca_topic_score_codex":0.14031897,"about_ca_topic_score_gemma":0.20906809,"teacher_disagreement_score":0.859681,"about_ca_system_score_codex":0.0019277766,"about_ca_system_score_gemma":0.001146871,"threshold_uncertainty_score":0.2790045},"labels":[],"label_agreement":null},{"id":"W3194753342","doi":"10.1093/jpe/rtab096","title":"Explaining variation in productivity requires intraspecific variability in plant height among communities","year":2021,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":"Université de Sherbrooke","funders":"China Scholarship Council; Anhui Agricultural University; Hainan University; National Natural Science Foundation of China","keywords":"Intraspecific competition; Interspecific competition; Productivity; Trait; Biology; Ecology; Ecosystem","score_opus":0.014394179160398273,"score_gpt":0.2203795400988092,"score_spread":0.2059853609384109,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3194753342","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":[0.99387324,0.00005695338,0.005775606,0.00002636937,0.0000026315968,0.000006591267,0.00008043418,0.000026034408,0.00015218464],"genre_scores_gemma":[0.9989165,0.0000086987,0.00093153823,0.0000075126422,0.0000014736088,0.0000052281953,0.000068956026,0.0000042694,0.000055826207],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9993771,0.0002259277,0.000028495224,0.00022533142,0.00006400124,0.00007929612],"domain_scores_gemma":[0.99846673,0.00070502143,0.00034860408,0.00022782355,0.00012092339,0.00013084702],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0014685343,0.00046734852,0.00036787265,0.0005321936,0.00039243777,0.00064596627,0.00044898127,0.00033788214,0.0008199384],"category_scores_gemma":[0.0018447934,0.00019325886,0.00059706473,0.00038809923,0.0005406039,0.00044590543,0.0005098714,0.0004076619,0.00007503231],"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":[0.00028589714,0.00019114082,0.8468003,0.00009234146,0.0009833425,0.00015792694,0.00040174893,0.020686414,0.112311825,0.0011629808,0.00017435166,0.016751712],"study_design_scores_gemma":[0.000011612667,0.00013806089,0.92116475,0.000005928692,0.00008976368,0.000038302634,0.00018372611,0.07510732,0.0018313214,0.0012008289,0.00020475303,0.000023599685],"about_ca_topic_score_codex":0.013577148,"about_ca_topic_score_gemma":0.019036071,"teacher_disagreement_score":0.013577148,"about_ca_system_score_codex":0.00067259,"about_ca_system_score_gemma":0.0004679764,"threshold_uncertainty_score":0.026996255},"labels":[],"label_agreement":null},{"id":"W3196928771","doi":"10.1093/jpe/rtab100","title":"Interactions between invasive plants and heavy metal stresses: a review","year":2021,"lang":"en","type":"review","venue":"Journal of Plant Ecology","topic":"Heavy metals in environment","field":"Environmental Science","cited_by":44,"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":"Natural Science Foundation of Jiangsu Province; National Natural Science Foundation of China","keywords":"Native plant; Invasive species; Context (archaeology); Biology; Biogeochemical cycle; Ecosystem; Ecology; Plant ecology; Heavy metals; Introduced species; Environmental science; Environmental chemistry; Chemistry","score_opus":0.06088539337538295,"score_gpt":0.3393590662141249,"score_spread":0.27847367283874197,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3196928771","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":[0.00013669569,0.99933016,0.00006054587,0.00009653553,0.000078516816,0.0000022448842,0.000014093772,0.0000037534228,0.0002773874],"genre_scores_gemma":[0.0007741717,0.99887246,0.00007690178,0.000052056585,0.00006379328,0.0000026348594,0.000015953707,7.49757e-7,0.00014134787],"study_design_codex":"design_other","study_design_gemma":"not_applicable","domain_scores_codex":[0.9997495,0.000041440886,0.000054758075,0.000059359685,0.00007444095,0.000020543896],"domain_scores_gemma":[0.9988839,0.0006705449,0.00016972896,0.000022656242,0.00020423491,0.00004898619],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00061486155,0.0010838592,0.0015488318,0.0033312691,0.00033730472,0.0012320123,0.0008666967,0.0010667335,0.0036997332],"category_scores_gemma":[0.0013445735,0.00038271415,0.0009040379,0.0036816439,0.000365934,0.0013789358,0.0006936375,0.0008889676,0.0008037745],"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":[0.00010914638,0.00009443687,0.0006270448,0.109315455,0.0004007908,0.00027094485,0.00014826885,0.0005989238,0.0015953003,0.0023566277,0.019037763,0.8654454],"study_design_scores_gemma":[0.000020719479,0.0002092735,0.0039077606,0.029742246,0.0011744918,0.0020788636,0.00020818009,0.00019969532,0.0008507586,0.0023016948,0.9592633,0.000042832547],"about_ca_topic_score_codex":0.001962372,"about_ca_topic_score_gemma":0.002679242,"teacher_disagreement_score":0.0036997332,"about_ca_system_score_codex":0.0004990436,"about_ca_system_score_gemma":0.0018675252,"threshold_uncertainty_score":0.012376785},"labels":[],"label_agreement":null},{"id":"W3198681409","doi":"10.1093/jpe/rtab090","title":"Edge influence on herbaceous plant species, diversity and soil properties in sparse oak forest fragments in Iran","year":2021,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":"Saint Mary's University","funders":"Vice Chancellor for Research and Technology, Kerman University of Medical Sciences; Urmia University","keywords":"Species evenness; Species richness; Herbaceous plant; Transect; Rarefaction (ecology); Species diversity; Environmental science; Agronomy; Ecology; Biology","score_opus":0.02192911158109664,"score_gpt":0.19779694938327624,"score_spread":0.1758678378021796,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3198681409","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":[0.9996792,0.00007534669,0.000037735856,0.000005454183,0.0000010436567,0.0000014300729,0.000039562,0.000001330361,0.0001588045],"genre_scores_gemma":[0.99973696,0.000044397417,0.000094451556,0.000005071957,0.00000327032,0.0000014676438,0.00007104898,6.5239186e-7,0.000042612537],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99982566,0.000032220432,0.000011865121,0.000042779604,0.000046200366,0.000041165313],"domain_scores_gemma":[0.9994862,0.0001000224,0.00022049053,0.000025940557,0.00009132992,0.00007588606],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00026931657,0.00017298145,0.00023685668,0.0008450385,0.00042691277,0.0002777173,0.00022718737,0.000116734744,0.0006986517],"category_scores_gemma":[0.0005238411,0.000096232914,0.00017728374,0.00066351105,0.00031223366,0.00019784097,0.00029600368,0.00013883974,0.00006590649],"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":[0.00007535864,0.000033715747,0.9913647,0.000024099647,0.000029438459,0.00012269511,0.00035191918,0.00010370316,0.0010807116,0.000024656854,0.00006191052,0.0067271143],"study_design_scores_gemma":[6.9815155e-7,0.000014265435,0.9996043,0.0000019869624,0.0000041905396,0.000035140838,0.00020518173,0.000038141534,0.000028171125,0.000009842179,0.00005733158,8.555857e-7],"about_ca_topic_score_codex":0.012402028,"about_ca_topic_score_gemma":0.029510781,"teacher_disagreement_score":0.012402028,"about_ca_system_score_codex":0.00023393457,"about_ca_system_score_gemma":0.00020879449,"threshold_uncertainty_score":0.024659693},"labels":[],"label_agreement":null},{"id":"W4226174529","doi":"10.1093/jpe/rtac053","title":"No evidence of a generalized potential ‘cost’ of apical dominance for species that have strong apical dominance","year":2022,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":false,"ca_institutions":"Queen's University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Apical dominance; Biology; Meristem; Shoot; Axillary bud; Dominance (genetics); Herbaceous plant; Botany; Ruminant; Lateral shoot; Phenology; Agronomy; Pasture; Explant culture","score_opus":0.027557466273687423,"score_gpt":0.2646586586565166,"score_spread":0.23710119238282917,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4226174529","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":[0.99901867,0.00008529621,0.0002191803,0.000013613153,0.000001960811,0.000003455643,0.000109351124,0.000009922877,0.0005385899],"genre_scores_gemma":[0.9994679,0.000015112344,0.00023314371,0.000021755426,0.0000026305631,0.0000034584039,0.00011371905,0.0000029193257,0.00013944872],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.999688,0.00004377821,0.000032646898,0.00009823783,0.00008965067,0.000047675225],"domain_scores_gemma":[0.99796224,0.0005393733,0.00058226904,0.0003064602,0.00020757661,0.00040216913],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00035305807,0.00019539615,0.0003918955,0.00036017157,0.00030367033,0.0004456666,0.0003898567,0.00033782978,0.0027407228],"category_scores_gemma":[0.0006097017,0.0001562524,0.0001787612,0.00021973497,0.00056683575,0.00037085405,0.0005043905,0.0004313366,0.00022774539],"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":[0.00042705773,0.00008427682,0.101216294,0.00020055556,0.00010669695,0.0002736688,0.00014446082,0.00020573281,0.8929901,0.00017106738,0.000062237086,0.004117777],"study_design_scores_gemma":[0.000014506583,0.0004918945,0.98097193,0.000006629043,0.000040935516,0.0006942075,0.00022396793,0.0005606198,0.016189093,0.00015502196,0.0006374323,0.000013806156],"about_ca_topic_score_codex":0.00055999774,"about_ca_topic_score_gemma":0.0017551767,"teacher_disagreement_score":0.0027407228,"about_ca_system_score_codex":0.0002121773,"about_ca_system_score_gemma":0.00017447062,"threshold_uncertainty_score":0.009168565},"labels":[],"label_agreement":null},{"id":"W4292693591","doi":"10.1093/jpe/rtac081","title":"Mycorrhizal fungi reduce fitness differences, but coexistence is determined by differences in intrinsic plant mycorrhizal responsiveness","year":2022,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Mycorrhizal Fungi and Plant Interactions","field":"Agricultural and Biological Sciences","cited_by":9,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":true,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"Health PEI; Agriculture and Agri-Food Canada","funders":"Agriculture and Agri-Food Canada","keywords":"Coexistence theory; Competition (biology); Biology; Niche; Biomass (ecology); Niche differentiation; Interspecific competition; Ecological niche; Ecology; Plant ecology; Plant community; Mutualism (biology); Botany; Ecological succession","score_opus":0.021034560123008278,"score_gpt":0.21981411022834377,"score_spread":0.1987795501053355,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4292693591","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":[0.99905926,0.00012414047,0.0004341617,0.000013940068,0.0000016890559,0.0000017944653,0.000027176968,0.000008807232,0.0003290558],"genre_scores_gemma":[0.99956316,0.000016033231,0.00023946915,0.0000070199876,0.000001162301,0.000002356475,0.000031993168,0.0000032444511,0.00013562536],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9996598,0.00009706744,0.000026811442,0.00007299117,0.00007203108,0.000071386734],"domain_scores_gemma":[0.99905914,0.00028256272,0.00020234445,0.00013763446,0.0000942427,0.00022411848],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034265142,0.00029104663,0.00032173147,0.0002645073,0.0002581676,0.0003456107,0.00024095053,0.00034349726,0.0012219168],"category_scores_gemma":[0.0005677065,0.00018164329,0.00027563286,0.00011562051,0.00023762533,0.0002653368,0.00051677646,0.00035265659,0.00017241004],"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":[0.00009841351,0.00005969383,0.0100856535,0.000031959025,0.000028843868,0.000027563201,0.000031440242,0.00026671297,0.9877544,0.00009736849,0.000017337354,0.0015005717],"study_design_scores_gemma":[0.00003259001,0.0006869105,0.7311652,0.000015596468,0.00007703943,0.00048176883,0.00022174334,0.0109815635,0.2545928,0.00075616897,0.0009612779,0.0000273738],"about_ca_topic_score_codex":0.0003889735,"about_ca_topic_score_gemma":0.0010192983,"teacher_disagreement_score":0.0012219168,"about_ca_system_score_codex":0.00018835047,"about_ca_system_score_gemma":0.00011464943,"threshold_uncertainty_score":0.004087746},"labels":[],"label_agreement":null},{"id":"W4311296990","doi":"10.1093/jpe/rtac104","title":"Maximum canopy height is associated with community phylogenetic structure in boreal forests","year":2022,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Forest Ecology and Biodiversity Studies","field":"Agricultural and Biological Sciences","cited_by":6,"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; University of Alberta","funders":"Priority Academic Program Development of Jiangsu Higher Education Institutions; Natural Science Foundation of Jiangsu Province; National Natural Science Foundation of China","keywords":"Canopy; Abiotic component; Ecology; Taiga; Niche; Niche differentiation; Biotic component; Understory; Biome; Community structure; Boreal; Biology; Geography; Environmental science; Ecosystem","score_opus":0.014255925778964243,"score_gpt":0.18796914742825999,"score_spread":0.17371322164929576,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4311296990","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":[0.9994629,0.000114326984,0.0001304045,0.000011178426,0.0000013445073,0.0000013547008,0.00008184588,0.000004479806,0.0001923062],"genre_scores_gemma":[0.9997087,0.000018386096,0.0001418737,0.0000047505537,0.0000017165522,0.0000010135813,0.00009365848,0.0000010720244,0.000028843024],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9996934,0.000053656375,0.000017231581,0.00010300516,0.00005070471,0.000082071274],"domain_scores_gemma":[0.9986897,0.00026735035,0.00045615956,0.000068165784,0.0002080765,0.00031051063],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00045927175,0.00017936781,0.000242107,0.001112441,0.0007101024,0.0005924135,0.0002809252,0.00026629094,0.001052377],"category_scores_gemma":[0.0012112039,0.00014994874,0.00017774734,0.00087557326,0.0004937643,0.0003773461,0.0004556991,0.00021537366,0.00007589166],"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":[0.00005603961,0.000016716072,0.99423164,0.0000142443905,0.00004971088,0.00003229613,0.00024828908,0.0001134833,0.0026983893,0.000047742065,0.000064112566,0.0024273023],"study_design_scores_gemma":[6.2985794e-7,0.00000598774,0.99961627,0.0000017916992,0.0000037066604,0.000024059384,0.00012762392,0.0001397749,0.000022160166,0.000024592686,0.000031955773,0.0000014417565],"about_ca_topic_score_codex":0.03137412,"about_ca_topic_score_gemma":0.08477374,"teacher_disagreement_score":0.03137412,"about_ca_system_score_codex":0.00050750136,"about_ca_system_score_gemma":0.0003147823,"threshold_uncertainty_score":0.062382996},"labels":[],"label_agreement":null},{"id":"W4389346506","doi":"10.1093/jpe/rtad041","title":"Nitrogen addition alters aboveground C:N:P stoichiometry of plants but not for belowground in an Inner Mongolia grassland","year":2023,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Soil Carbon and Nitrogen Dynamics","field":"Agricultural and Biological Sciences","cited_by":7,"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","funders":"National Natural Science Foundation of China","keywords":"Stoichiometry; Nitrogen; Grassland; Ecological stoichiometry; Biomass (ecology); Temperate climate; Deposition (geology); Animal science; Chemistry; Ecosystem; Agronomy; Environmental chemistry; Botany; Biology; Ecology","score_opus":0.026522931922068643,"score_gpt":0.25006771879403217,"score_spread":0.22354478687196352,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4389346506","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":[0.99975663,0.000075028765,0.00005532638,0.000003583032,0.0000014101325,0.0000015548841,0.000018720162,0.0000019170543,0.00008578938],"genre_scores_gemma":[0.9991371,0.00007823938,0.00030585838,0.00002673083,0.0000013860202,0.0000075194985,0.00011153599,0.000002817167,0.00032889567],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.99987483,0.00001946678,0.000010268051,0.000049772163,0.000017934493,0.000027757309],"domain_scores_gemma":[0.99984205,0.00002067446,0.000040545434,0.000011832151,0.000028120056,0.00005675577],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00025250262,0.00023717961,0.0002761487,0.00030125817,0.00049925345,0.00033570983,0.00026862213,0.0002571182,0.00031048912],"category_scores_gemma":[0.000103256,0.00018773635,0.00018597645,0.00017914886,0.00023770687,0.00024839226,0.00022494186,0.00020593592,0.00005543583],"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":[0.00048261406,0.00011883774,0.069759265,0.00014310297,0.00009480528,0.00022654457,0.0004179458,0.0003683892,0.9235292,0.000044631226,0.00005429893,0.0047603576],"study_design_scores_gemma":[0.000015199958,0.00039217458,0.9743746,0.000009759465,0.000051013434,0.00011447863,0.00043845407,0.0014741848,0.022090986,0.00004000289,0.0009860438,0.000013192182],"about_ca_topic_score_codex":0.015392952,"about_ca_topic_score_gemma":0.029225612,"teacher_disagreement_score":0.015392952,"about_ca_system_score_codex":0.00068776665,"about_ca_system_score_gemma":0.00039225264,"threshold_uncertainty_score":0.030606747},"labels":[],"label_agreement":null},{"id":"W4389504802","doi":"10.1093/jpe/rtad044","title":"Leaf stoichiometry of common species along altitude gradients in the Qilian Mountains, China","year":2023,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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 Guelph","funders":"Gansu Education Department; National Natural Science Foundation of China","keywords":"Altitude (triangle); Biogeochemical cycle; Ecological stoichiometry; Precipitation; Nutrient; Plant community; Ecology; Environmental science; Biology; Geography","score_opus":0.01167889215697854,"score_gpt":0.24398522333620765,"score_spread":0.2323063311792291,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4389504802","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":[0.9997186,0.000041538522,0.000072091185,0.0000048690354,5.167733e-7,0.0000014550395,0.000059524402,0.0000019383115,0.0000995629],"genre_scores_gemma":[0.99965537,0.000016281023,0.000121002246,0.000007721735,9.150589e-7,0.000003215765,0.00011206182,0.0000010264597,0.000082326136],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99983656,0.000022057993,0.000012756291,0.000074520314,0.000028769593,0.000025376392],"domain_scores_gemma":[0.9997509,0.000034901765,0.00006849955,0.000018008637,0.00007576022,0.00005186846],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00034593538,0.00024124821,0.0002852771,0.0010771957,0.0006985652,0.00033803275,0.00027983426,0.00020403363,0.0004827266],"category_scores_gemma":[0.00025837665,0.00018276507,0.00019236152,0.0009136526,0.00034173767,0.00040006227,0.0004040223,0.00014771278,0.00005020884],"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":[0.00012588433,0.000027987007,0.93656516,0.00009470529,0.00014008713,0.00015866414,0.00164468,0.0003413498,0.053542085,0.00012797149,0.000100057434,0.0071313637],"study_design_scores_gemma":[0.0000016296117,0.0000126510495,0.9991761,0.0000016509656,0.0000076133683,0.000028852162,0.00018937516,0.0002496474,0.00023223805,0.000015771626,0.0000818135,0.000002631988],"about_ca_topic_score_codex":0.014763183,"about_ca_topic_score_gemma":0.030113036,"teacher_disagreement_score":0.014763183,"about_ca_system_score_codex":0.0005676735,"about_ca_system_score_gemma":0.00027925806,"threshold_uncertainty_score":0.029354513},"labels":[],"label_agreement":null},{"id":"W4389611393","doi":"10.1093/jpe/rtad045","title":"Leaf and root traits are partially coordinated but they show contrasting multi-trait-based community trait dispersion patterns in a subtropical forest","year":2023,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics Studies","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":"University of Alberta","funders":"Basic and Applied Basic Research Foundation of Guangdong Province; China Postdoctoral Science Foundation; National Natural Science Foundation of China","keywords":"Trait; Biology; Specific leaf area; Tropical and subtropical moist broadleaf forests; Subtropics; Ecology; Plant community; Botany; Agronomy; Ecological succession","score_opus":0.023245604096420645,"score_gpt":0.24405688894894803,"score_spread":0.22081128485252738,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4389611393","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":[0.99976784,0.00002411042,0.00010883706,0.0000030322144,3.780476e-7,0.0000011081742,0.000029094565,0.0000023499235,0.00006330291],"genre_scores_gemma":[0.99976915,0.000007866949,0.00010774725,0.0000038333433,8.2583375e-7,0.0000020123694,0.00006688507,8.4279833e-7,0.0000408217],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9997856,0.00004203904,0.000014180471,0.000082600185,0.000037667563,0.000037868977],"domain_scores_gemma":[0.9996958,0.000064469656,0.000080551334,0.000032746993,0.000067507455,0.000059077796],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00041865217,0.00027058568,0.0002973543,0.0010909578,0.00047549268,0.00034607324,0.00018999657,0.00019496477,0.00048343829],"category_scores_gemma":[0.0004043712,0.00014804752,0.00023772934,0.00069996255,0.0003998983,0.00027564022,0.000415961,0.00015122899,0.00006597767],"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":[0.00014053214,0.000039831943,0.93418485,0.000039584396,0.00016556316,0.00010409623,0.0011593022,0.00041108186,0.056930434,0.0000817859,0.000058170706,0.0066848574],"study_design_scores_gemma":[0.0000012906107,0.000011343707,0.99906605,0.0000010986319,0.0000075051944,0.000021329171,0.00017132498,0.000443657,0.0002145557,0.000021200618,0.000037988022,0.0000026996756],"about_ca_topic_score_codex":0.008036384,"about_ca_topic_score_gemma":0.019218339,"teacher_disagreement_score":0.008036384,"about_ca_system_score_codex":0.0002684872,"about_ca_system_score_gemma":0.00017552954,"threshold_uncertainty_score":0.01597917},"labels":[],"label_agreement":null},{"id":"W4394974610","doi":"10.1093/jpe/rtae030","title":"The combination of elevated CO2 and warmer temperature reduces photosynthetic capacity without diluting leaf N concentration in Amur linden (<i>Tilia amurensis</i>)","year":2024,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Plant responses to elevated CO2","field":"Agricultural and Biological 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":false,"ca_institutions":"Lakehead University","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Tilia; Photosynthesis; Photosynthetic capacity; Botany; Chemistry; Horticulture; Environmental science; Biology; Pollen","score_opus":0.011401138377291965,"score_gpt":0.21293792306166057,"score_spread":0.20153678468436861,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4394974610","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":[0.9996177,0.00006680056,0.0001253256,0.000009653259,0.000002460512,0.0000016353928,0.000038439543,0.0000104892315,0.00012746843],"genre_scores_gemma":[0.9991603,0.00003867101,0.00025207648,0.00002416923,0.0000014202458,0.000008459079,0.00014118475,0.0000053814633,0.0003682903],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9999287,0.000008581695,0.000008489574,0.000027350605,0.000010162656,0.000016736669],"domain_scores_gemma":[0.9999194,0.000013573563,0.000027021297,0.000005690225,0.000009537289,0.00002473369],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000113294,0.0002053246,0.0002271408,0.00016169653,0.00021835425,0.00024675106,0.00026552,0.00016843788,0.00044502004],"category_scores_gemma":[0.00010489038,0.00009845035,0.00020177879,0.00007520753,0.00013314474,0.00019926214,0.0002330523,0.00025117912,0.000083201885],"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":[0.00018634992,0.000037600574,0.0071965125,0.000035903602,0.000019600664,0.000062514846,0.000051352243,0.00017337683,0.9912019,0.000030028981,0.000025934414,0.0009788554],"study_design_scores_gemma":[0.00012900395,0.0018031948,0.64917034,0.000031735,0.00012834632,0.00050393975,0.00063173287,0.008629467,0.3355205,0.00025121734,0.0031639691,0.000036619924],"about_ca_topic_score_codex":0.006239337,"about_ca_topic_score_gemma":0.008807316,"teacher_disagreement_score":0.006239337,"about_ca_system_score_codex":0.00045743646,"about_ca_system_score_gemma":0.00013705059,"threshold_uncertainty_score":0.012405992},"labels":[],"label_agreement":null},{"id":"W4399381417","doi":"10.1093/jpe/rtae050","title":"Climate refugia along Lake Superior’s shores: disjunct arctic–alpine plants rely on cool shoreline temperatures but are restricted to highly exposed habitat under climate warming","year":2024,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Species Distribution and Climate Change","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 Alberta","funders":"Natural Sciences and Engineering Research Council of Canada","keywords":"Disjunct; Ecology; Arctic; Habitat; Climate change; Shore; Biological dispersal; Microclimate; Disjunct distribution; Global warming; Species distribution; Environmental science; Geography; Physical geography; Oceanography; Population; Geology; Biology","score_opus":0.0216651253698055,"score_gpt":0.2530349979976047,"score_spread":0.2313698726277992,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4399381417","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":[0.9993012,0.000013647386,0.00031977173,0.000020028874,8.1475747e-7,0.0000019464417,0.000103408864,0.000014653493,0.0002245573],"genre_scores_gemma":[0.99936014,0.000014833294,0.0003418826,0.000009676613,0.0000010151178,0.0000028258073,0.00018247604,0.0000033798976,0.00008369689],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99987626,0.000023809438,0.000008243912,0.000048100195,0.000014683475,0.00002889232],"domain_scores_gemma":[0.99972254,0.000083472354,0.000078555815,0.000025871726,0.000035919642,0.00005369101],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.000414631,0.0002350148,0.00022800482,0.00034031254,0.0004989554,0.0006567461,0.00031189984,0.00023262516,0.0017634076],"category_scores_gemma":[0.00064479205,0.00017558075,0.0005167883,0.00041918512,0.0003669002,0.0003389169,0.00043362632,0.00023945022,0.00009843674],"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":[0.00013818592,0.000055389002,0.93294907,0.000040916686,0.00018317677,0.00017897924,0.00033838555,0.0553011,0.0037760101,0.00090038526,0.0005229941,0.005615349],"study_design_scores_gemma":[0.00005781743,0.00011667174,0.67581517,0.000023693494,0.00010573476,0.00012111815,0.00075912947,0.32074347,0.0004880959,0.0007180768,0.0010207223,0.000030228468],"about_ca_topic_score_codex":0.10837466,"about_ca_topic_score_gemma":0.21322113,"teacher_disagreement_score":0.10837466,"about_ca_system_score_codex":0.0009817937,"about_ca_system_score_gemma":0.0006603622,"threshold_uncertainty_score":0.21548772},"labels":[],"label_agreement":null},{"id":"W4400352243","doi":"10.1093/jpe/rtae062","title":"Interactive effects of soils, local environmental conditions and herbivores on secondary chemicals in tallow tree","year":2024,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Forest ecology and management","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":"University of British Columbia","funders":"Natural Science Foundation of Hunan Province; National Natural Science Foundation of China","keywords":"Tallow; Herbivore; Soil water; Tree (set theory); Environmental science; Ecology; Biology; Mathematics; Biotechnology","score_opus":0.0020578331594444253,"score_gpt":0.19740719826096836,"score_spread":0.19534936510152393,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4400352243","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":[0.99988115,0.000031396736,0.00002240676,0.0000026450164,3.6956664e-7,0.0000015753303,0.000024669002,0.0000014805366,0.00003428203],"genre_scores_gemma":[0.99960524,0.000032629097,0.00009387197,0.000010652431,8.012733e-7,0.000004227908,0.000103077145,0.0000015588888,0.00014785635],"study_design_codex":"bench_or_experimental","study_design_gemma":"observational","domain_scores_codex":[0.9999125,0.000019543837,0.000006090076,0.000026095144,0.000012857967,0.000022905502],"domain_scores_gemma":[0.99970216,0.000049266146,0.00006068526,0.000013406615,0.000030071164,0.00014449887],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00015023626,0.0002552801,0.0002878269,0.00027971584,0.00033460444,0.00028942068,0.00012078662,0.00016107375,0.0006040674],"category_scores_gemma":[0.00011194882,0.00013735739,0.00019414317,0.00022018839,0.00020393054,0.00017714145,0.00023770687,0.00028006942,0.000056385226],"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":[0.00081878394,0.00015429771,0.1353468,0.00007791996,0.00007318186,0.00017552904,0.00024522384,0.000099941826,0.86112547,0.00003589663,0.00003622986,0.0018107892],"study_design_scores_gemma":[0.000005904805,0.00026809622,0.9900821,0.0000013818425,0.000023124974,0.00003180157,0.00016661132,0.0002442678,0.009064325,0.000014207955,0.00009387791,0.000004351361],"about_ca_topic_score_codex":0.006128433,"about_ca_topic_score_gemma":0.0154658975,"teacher_disagreement_score":0.006128433,"about_ca_system_score_codex":0.00040963423,"about_ca_system_score_gemma":0.00023678895,"threshold_uncertainty_score":0.012185514},"labels":[],"label_agreement":null},{"id":"W4404793832","doi":"10.1093/jpe/rtae105","title":"Structure and functions of soil microbial communities and tree composition are more closely associated with keystone microbes than rare microbes in a subtropical forest","year":2024,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Microbial Community Ecology and Physiology","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 Alberta","funders":"Natural Sciences and Engineering Research Council of Canada; National Natural Science Foundation of China","keywords":"Ecology; Subtropics; Tropical and subtropical moist broadleaf forests; Biology; Composition (language); Microbial ecology; Bacteria; Paleontology","score_opus":0.007288769534300663,"score_gpt":0.1964872604218478,"score_spread":0.18919849088754714,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4404793832","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":[0.9996369,0.00009804319,0.00014601191,0.0000034786588,6.7823277e-7,0.0000016399941,0.00004172856,0.0000014308308,0.00007012707],"genre_scores_gemma":[0.9996321,0.000049032562,0.0001877342,0.00000694154,0.0000016713452,0.0000019614238,0.00006707358,6.6714233e-7,0.000052839165],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998105,0.000034618686,0.000018321502,0.00006560381,0.000035227087,0.000035606252],"domain_scores_gemma":[0.99958855,0.00006673837,0.00015891524,0.00002975346,0.00007054067,0.00008551041],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00031324115,0.00024344213,0.00027339853,0.00092900684,0.0004588733,0.00046110584,0.0001403295,0.00019120291,0.00054173113],"category_scores_gemma":[0.00042634868,0.000113145004,0.0001822239,0.0006547104,0.00031079532,0.00038231158,0.00051689986,0.00016761023,0.00007208401],"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":[0.00025065348,0.00004525758,0.8947289,0.00006713177,0.00014696426,0.00010035329,0.000474102,0.00018139894,0.09573562,0.00005450403,0.000027702603,0.008187348],"study_design_scores_gemma":[0.000001236277,0.000031831474,0.9982438,0.0000023309121,0.000018475124,0.000058111535,0.00026679045,0.00019691959,0.0010690467,0.00003158689,0.00007735022,0.000002592009],"about_ca_topic_score_codex":0.0032588448,"about_ca_topic_score_gemma":0.007114945,"teacher_disagreement_score":0.0032588448,"about_ca_system_score_codex":0.00016928949,"about_ca_system_score_gemma":0.00015687596,"threshold_uncertainty_score":0.0064797997},"labels":[],"label_agreement":null},{"id":"W4408977403","doi":"10.1093/jpe/rtaf038","title":"Taxonomic diversity predicts aboveground biomass mainly through functional dominance across subtropical forest succession","year":2025,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Ecology and Vegetation Dynamics 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":"The Scarborough Hospital; University of Toronto","funders":"South China Botanical Garden, Chinese Academy of Sciences; National Natural Science Foundation of China","keywords":"Dominance (genetics); Ecological succession; Ecology; Biology; Biomass (ecology); Functional diversity; Secondary succession; Ecosystem; Biodiversity","score_opus":0.01302701764138953,"score_gpt":0.23984194089941677,"score_spread":0.22681492325802724,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4408977403","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":[0.99914885,0.0001425186,0.00020620968,0.00001998488,0.0000025671113,0.0000016628252,0.00016473868,0.000005551585,0.0003079048],"genre_scores_gemma":[0.9996668,0.00002798045,0.00007887399,0.0000057476987,0.0000021287974,0.0000010827017,0.00014996243,9.786097e-7,0.00006650888],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998534,0.000031883377,0.000010394106,0.000041890962,0.000024343513,0.000038091268],"domain_scores_gemma":[0.99947757,0.000100748446,0.00013788039,0.000043950567,0.00009605099,0.00014391649],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0006018591,0.00039106308,0.00021375218,0.0011434092,0.00039068598,0.0004970199,0.00019460224,0.00017707204,0.0013868014],"category_scores_gemma":[0.0007910109,0.00011743332,0.00036643213,0.00074650656,0.00030822432,0.0004025844,0.00046248012,0.00020367364,0.00019767089],"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":[0.00003893388,0.0000116849105,0.99274594,0.00001777398,0.00006751214,0.00004133205,0.00012514477,0.0005009687,0.0025591739,0.000062626015,0.00008776973,0.0037412134],"study_design_scores_gemma":[9.008438e-7,0.000008550898,0.9987148,0.0000030514766,0.000009566119,0.000014355009,0.00010463595,0.0009110357,0.0000910944,0.000042286138,0.00009784883,0.0000018322894],"about_ca_topic_score_codex":0.0147263855,"about_ca_topic_score_gemma":0.026056446,"teacher_disagreement_score":0.0147263855,"about_ca_system_score_codex":0.00032075236,"about_ca_system_score_gemma":0.00027382685,"threshold_uncertainty_score":0.029281378},"labels":[],"label_agreement":null},{"id":"W4414116881","doi":"10.1093/jpe/rtaf135","title":"Community leaf nutrient characteristics drive soil carbon stabilization by regulating soil nutrient and microbial community in a subtropical forest plantation","year":2025,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Forest Ecology and Biodiversity Studies","field":"Agricultural and Biological Sciences","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 Alberta","funders":"Basic and Applied Basic Research Foundation of Guangdong Province; Shenzhen Science and Technology Innovation Program; Fundamental Research Funds for the Central Universities; Sun Yat-sen University; National Natural Science Foundation of China","keywords":"Nutrient; Soil carbon; Biomass (ecology); Tropical and subtropical moist broadleaf forests; Soil organic matter; Microbial population biology; Phosphorus; Soil biodiversity; Monoculture; Biodiversity","score_opus":0.01412047344346982,"score_gpt":0.20578582433288636,"score_spread":0.19166535088941655,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4414116881","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":[0.9998944,0.00001526837,0.00003755071,0.0000024703004,1.8781702e-7,9.3286457e-7,0.000013005489,0.0000011514869,0.000035076733],"genre_scores_gemma":[0.9998362,0.000010117516,0.000078352314,0.00000474126,5.4301586e-7,0.0000015498483,0.000027502676,4.8925267e-7,0.000040401686],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99991167,0.000018361174,0.000006344647,0.000029189745,0.000014837857,0.00001967874],"domain_scores_gemma":[0.9998029,0.000030613995,0.000051624895,0.000012309534,0.000031982043,0.00007068451],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00021842214,0.00019856195,0.00016756756,0.00035985463,0.00030576639,0.0003294029,0.00019931232,0.00015429112,0.00038715932],"category_scores_gemma":[0.00018474915,0.000105785366,0.00015052348,0.00018319566,0.0002739595,0.00020798083,0.00032095425,0.00015873881,0.0000547392],"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":[0.00040311107,0.00018988248,0.53867763,0.000054742457,0.000114027156,0.00014092027,0.0005059674,0.00050837506,0.45350888,0.000098961515,0.000041552794,0.0057560015],"study_design_scores_gemma":[0.0000026573443,0.00007097205,0.996283,0.0000015238641,0.000012022146,0.00002875847,0.00018835398,0.0010901965,0.002246685,0.000028503013,0.00004460048,0.0000027512208],"about_ca_topic_score_codex":0.008201327,"about_ca_topic_score_gemma":0.014830993,"teacher_disagreement_score":0.008201327,"about_ca_system_score_codex":0.00037604396,"about_ca_system_score_gemma":0.00027838268,"threshold_uncertainty_score":0.016307175},"labels":[],"label_agreement":null},{"id":"W4415199617","doi":"10.1093/jpe/rtaf168","title":"Effects of seed tape on eelgrass ( <i>Zostera marina</i> L.) seed germination and seedling development: a study into seed tape sowing technique for seagrass restoration","year":2025,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Marine and coastal plant biology","field":"Earth and Planetary Sciences","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":"Ministry of Natural Resources and Forestry","funders":"National Key Research and Development Program of China; State Oceanic Administration; Natural Science Foundation of Shandong Province; National Natural Science Foundation of China","keywords":"Seedling; Seagrass; Sowing; Zostera marina; Germination","score_opus":0.006727980920973657,"score_gpt":0.22214001134488665,"score_spread":0.215412030423913,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4415199617","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":[0.9990056,0.0003236978,0.00037085675,0.00001140759,0.000008260114,0.0000149436155,0.000032156542,0.000010323458,0.0002227632],"genre_scores_gemma":[0.9972681,0.00041719302,0.0015903736,0.000029607601,0.000003050682,0.000017751294,0.000051077157,0.000007673137,0.00061525876],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99991953,0.000016520751,0.000008319334,0.00002204527,0.000019425144,0.000014122149],"domain_scores_gemma":[0.9998117,0.00005016276,0.000056719367,0.000012727529,0.000029574165,0.000039086215],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0001442153,0.00033456905,0.00020965449,0.00016843065,0.00017768158,0.00025281508,0.00014669486,0.0001694248,0.0006510358],"category_scores_gemma":[0.00019687242,0.000097103926,0.00029489162,0.00010751471,0.00014601438,0.00016927335,0.00015644441,0.00042058885,0.0001128785],"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":[0.00031353856,0.00017973404,0.0010134038,0.00010601852,0.0000087920225,0.000060641352,0.0000417639,0.00007440017,0.99412715,0.000009860553,0.000013370049,0.004051329],"study_design_scores_gemma":[0.000029812652,0.009522405,0.05568902,0.000028060933,0.000075872114,0.00012807065,0.00030203295,0.001101096,0.9318611,0.000024344332,0.0012192492,0.00001900899],"about_ca_topic_score_codex":0.0016274801,"about_ca_topic_score_gemma":0.004154955,"teacher_disagreement_score":0.0016274801,"about_ca_system_score_codex":0.0001718933,"about_ca_system_score_gemma":0.00018259541,"threshold_uncertainty_score":0.0032360554},"labels":[],"label_agreement":null},{"id":"W4415661150","doi":"10.1093/jpe/rtaf181","title":"Elevation gradient modulates the effects of herbaceous encroachment on the long-term growth trends and climate sensitivity of <i>Rhododendron aureum</i> in alpine tundra","year":2025,"lang":"en","type":"article","venue":"Journal of Plant Ecology","topic":"Tree-ring climate responses","field":"Earth and Planetary Sciences","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":"University of British Columbia","funders":"Youth Innovation Promotion Association of the Chinese Academy of Sciences; China Scholarship Council; Youth Innovation Promotion Association; Chinese Academy of Sciences; National Natural Science Foundation of China","keywords":"Tundra; Precipitation; Ecosystem; Climate change; Elevation (ballistics); Herbaceous plant; Vegetation (pathology); Global warming","score_opus":0.007753513119725257,"score_gpt":0.22044123626251597,"score_spread":0.21268772314279072,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4415661150","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":[0.99952507,0.000072948904,0.00011949485,0.000010023031,0.0000015284221,0.0000011887447,0.00012922287,0.000009137368,0.00013137278],"genre_scores_gemma":[0.99964285,0.00002480434,0.000080110636,0.000008819287,0.0000017693566,0.0000019834474,0.00015669009,0.0000028559436,0.00008003893],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.9998369,0.00004076071,0.0000108094455,0.00006196777,0.000019156774,0.00003028862],"domain_scores_gemma":[0.99971944,0.000042849126,0.00010004479,0.000031192878,0.000047280264,0.000059221125],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002766156,0.00022940214,0.0002165936,0.00036835164,0.00021204604,0.00037430375,0.00018518778,0.00015248047,0.00076357316],"category_scores_gemma":[0.0002849349,0.00010983571,0.00035764137,0.0004016933,0.00019679451,0.00017410402,0.00031187607,0.00022469278,0.00015479584],"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":[0.00021736952,0.00007624598,0.8992803,0.000039229057,0.00023855372,0.00015304594,0.0003005561,0.0006820806,0.09341384,0.000071978364,0.000119340395,0.0054073846],"study_design_scores_gemma":[6.4955736e-7,0.000013033875,0.9992034,9.0005454e-7,0.000007952394,0.000016459902,0.00005630513,0.00037113432,0.00024555853,0.000006971615,0.00007573866,0.0000018703532],"about_ca_topic_score_codex":0.014679606,"about_ca_topic_score_gemma":0.02449834,"teacher_disagreement_score":0.014679606,"about_ca_system_score_codex":0.00033473462,"about_ca_system_score_gemma":0.00021064251,"threshold_uncertainty_score":0.029188335},"labels":[],"label_agreement":null},{"id":"W4416339518","doi":"10.1093/jpe/rtaf195","title":"Nitrogen deposition altered the climatic sensitivity of vegetation phenology","year":2025,"lang":"en","type":"article","venue":"Journal of Plant Ecology","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":"Université de Montréal; Université du Québec à Montréal; HEC Montréal","funders":"Natural Science Foundation of Hunan Province; National Natural Science Foundation of China","keywords":"Phenology; Deposition (geology); Growing season; Vegetation (pathology); Nitrogen; Moisture; Climate change; Nutrient","score_opus":0.005483708055290077,"score_gpt":0.20488132338703324,"score_spread":0.19939761533174316,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W4416339518","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":[0.99916804,0.00008682071,0.00021641425,0.000012035489,0.0000047263893,0.0000036138815,0.0002537119,0.000010969457,0.00024364663],"genre_scores_gemma":[0.9995703,0.000031963995,0.00008309764,0.0000082840525,0.000001519534,0.0000032977334,0.00020421452,0.0000020240955,0.00009535472],"study_design_codex":"observational","study_design_gemma":"observational","domain_scores_codex":[0.99988496,0.000020267951,0.000007989231,0.000054956727,0.000014822072,0.0000170734],"domain_scores_gemma":[0.99987435,0.000035304907,0.000030881565,0.0000150620335,0.00002477587,0.000019550063],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0002540658,0.00028941434,0.00023116369,0.00022811962,0.00014878542,0.00028372236,0.00017766785,0.0002306703,0.00067052944],"category_scores_gemma":[0.000226605,0.00017575093,0.00034292744,0.00022150698,0.00014891742,0.00026211134,0.00021434527,0.00019245161,0.00007819234],"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":[0.0007850847,0.00018401958,0.5321426,0.00015904303,0.00053548027,0.00024518353,0.000107795495,0.018425662,0.43913144,0.00016254996,0.00026557487,0.007855576],"study_design_scores_gemma":[0.000009676374,0.000051032875,0.9817353,0.0000023504895,0.000022888422,0.00002734267,0.000040746872,0.013082706,0.0047705616,0.0000490074,0.00020226961,0.000006198127],"about_ca_topic_score_codex":0.017669756,"about_ca_topic_score_gemma":0.014870674,"teacher_disagreement_score":0.017669756,"about_ca_system_score_codex":0.0006313301,"about_ca_system_score_gemma":0.00021521807,"threshold_uncertainty_score":0.03513384},"labels":[],"label_agreement":null}]}