{"meta":{"query_hash":"736e76bffaa5","filters":{"venue":"OSA Quantum 2.0 Conference"},"cohort_total":10,"direct_labels_cover":0,"predictions_cover":10,"exported":10,"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/736e76bffaa5","api":"https://metacan.xera.ac/api/v1/cohort?venue=OSA+Quantum+2.0+Conference"},"results":[{"id":"W3110666678","doi":"10.1364/quantum.2020.qw6a.5","title":"Quantum bounds to localization of partially coherent emitters","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Photonic and Optical Devices","field":"Engineering","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 Ottawa","funders":"","keywords":"Coherence (philosophical gambling strategy); Sensitivity (control systems); Resolution (logic); Coherence time; Photon; Physics; Quantum; Image resolution; Spatial coherence; Degree of coherence; Optics; Quantum mechanics; Computer science; Electronic engineering; Engineering; Artificial intelligence","score_opus":0.0286238543460222,"score_gpt":0.23815148218589022,"score_spread":0.209527627839868,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3110666678","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":[0.31711066,0.0047614537,0.5759086,0.008416083,0.00052290224,0.000041962016,0.00025661755,0.00059206126,0.09238967],"genre_scores_gemma":[0.97261286,0.0008583264,0.022232557,0.0003518502,0.0003042525,0.000070364535,0.00007674895,0.000085130865,0.0034077931],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9964042,0.0010509144,0.00014841535,0.00048353407,0.0013611002,0.0005519208],"domain_scores_gemma":[0.9682561,0.024165418,0.001548863,0.0031701813,0.0018191966,0.0010401704],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0037240325,0.00047397625,0.0008302844,0.0015687877,0.0012984885,0.003518784,0.0014387099,0.0019358792,0.004594435],"category_scores_gemma":[0.019278819,0.00063283165,0.00045460812,0.00086765067,0.004878521,0.0046189437,0.0049357037,0.0027901358,0.00049646146],"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":[0.000086425716,0.000017491713,0.00022027065,0.000043401546,0.00001299678,0.00007562227,0.00009423451,0.01246778,0.0059818383,0.9746946,0.0006057169,0.0056994734],"study_design_scores_gemma":[0.000027537986,0.000047259473,0.00044783074,0.00003598824,0.000012264881,0.00008969556,0.00004964639,0.123113155,0.0061240485,0.8678318,0.0021828876,0.000037836904],"about_ca_topic_score_codex":0.0006815607,"about_ca_topic_score_gemma":0.00088473485,"teacher_disagreement_score":0.004594435,"about_ca_system_score_codex":0.0020731222,"about_ca_system_score_gemma":0.00064577267,"threshold_uncertainty_score":0.019694805},"labels":[],"label_agreement":null},{"id":"W3110668301","doi":"10.1364/quantum.2020.qtu8a.15","title":"A Quantum Computer Architecture Based on Silicon Donor Qubits Coupled by Photons","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Quantum Information and Cryptography","field":"Computer Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of British Columbia","funders":"","keywords":"Quantum computer; Qubit; Photon; Computer science; Photonics; Pauli exclusion principle; Quantum network; Quantum; Architecture; Silicon; Computation; Physics; Optoelectronics; Quantum mechanics; Algorithm","score_opus":0.018127164500017928,"score_gpt":0.22197019211241625,"score_spread":0.20384302761239834,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3110668301","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.5499874,0.0012897508,0.4029985,0.0010700576,0.00038837353,0.00018993797,0.00022221591,0.001904908,0.041948814],"genre_scores_gemma":[0.8837487,0.00053241913,0.10735488,0.00015315585,0.0000295418,0.00008657862,0.000094515184,0.00003945973,0.00796073],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.9999076,0.000018674787,0.0000043959017,0.000021555456,0.000029143426,0.000018673114],"domain_scores_gemma":[0.9999037,0.00002433694,0.00000811128,0.000025735395,0.000017063267,0.000021104732],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00019059387,0.00014410548,0.00023365211,0.00019153373,0.00055612886,0.00079275406,0.0007864918,0.00044100147,0.0019063805],"category_scores_gemma":[0.00015312739,0.0001407319,0.00020993412,0.00022535831,0.00057591475,0.00080119364,0.00040841787,0.0004840592,0.00049561315],"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":[0.00035752577,0.00028224543,0.0012420419,0.00032746908,0.00007715262,0.00042030544,0.00034407785,0.02728059,0.40026274,0.5115269,0.0052562836,0.05262259],"study_design_scores_gemma":[0.00018861344,0.0014008062,0.0013162238,0.00008838424,0.0002067858,0.0008633069,0.00020156804,0.42713714,0.41164887,0.077708796,0.079119615,0.00011988211],"about_ca_topic_score_codex":0.00050071493,"about_ca_topic_score_gemma":0.0012413687,"teacher_disagreement_score":0.0019063805,"about_ca_system_score_codex":0.00039724266,"about_ca_system_score_gemma":0.0006514889,"threshold_uncertainty_score":0.006377518},"labels":[],"label_agreement":null},{"id":"W3111006443","doi":"10.1364/quantum.2020.qm6b.1","title":"Scalable Generation of Multi-Photon GHZ States","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Quantum Information and Cryptography","field":"Computer 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":"Xanadu Quantum Technologies (Canada)","funders":"","keywords":"Scalability; Photon; Multiplexing; Physics; Optoelectronics; Computer science; Quantum; Electronic engineering; Optics; Quantum mechanics; Telecommunications; Engineering","score_opus":0.07277426625927405,"score_gpt":0.2613866096005339,"score_spread":0.18861234334125984,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3111006443","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.89945465,0.0011393176,0.081641585,0.0006953366,0.00024285966,0.0001210272,0.00032738812,0.0011835754,0.0151943],"genre_scores_gemma":[0.9775528,0.00020652536,0.02045418,0.000060279966,0.000020047757,0.000041315354,0.00008247706,0.000038219496,0.0015441542],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99978,0.000021016325,0.000008056884,0.000050382863,0.000079441576,0.000060975417],"domain_scores_gemma":[0.99958044,0.00014960338,0.00008481734,0.00008069181,0.00004035997,0.00006407559],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00043751686,0.00042417375,0.00031974542,0.00036881567,0.00026467707,0.0006022982,0.0006752862,0.00035865558,0.0033978103],"category_scores_gemma":[0.0006578464,0.00022806569,0.00016076333,0.00027495675,0.00046334323,0.0013893262,0.0012559879,0.0009562265,0.00048454112],"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":[0.00023249176,0.0001502744,0.00067347224,0.00008317378,0.000015724392,0.00010955448,0.00007429515,0.003679905,0.959888,0.017919883,0.0007993186,0.016373979],"study_design_scores_gemma":[0.000033839857,0.0001983297,0.00033526358,0.0000099115405,0.000009071198,0.00009178621,0.000020125603,0.04959286,0.9446973,0.0025161058,0.002476377,0.000019005844],"about_ca_topic_score_codex":0.00025025118,"about_ca_topic_score_gemma":0.00039919067,"teacher_disagreement_score":0.0033978103,"about_ca_system_score_codex":0.00034661771,"about_ca_system_score_gemma":0.00031757148,"threshold_uncertainty_score":0.011366844},"labels":[],"label_agreement":null},{"id":"W3111475465","doi":"10.1364/quantum.2020.qth7a.7","title":"Comparing Entanglement and Optical Nonclassicality of Bosonic States","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Quantum Information and Cryptography","field":"Computer Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Toronto","funders":"","keywords":"Quantum entanglement; Coherence (philosophical gambling strategy); Quantum mechanics; Quantum discord; Physics; Quantum; State (computer science); Statistical physics; Computer science; Algorithm","score_opus":0.047943966741831795,"score_gpt":0.2519775807932745,"score_spread":0.20403361405144269,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3111475465","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.45981422,0.0038845877,0.43449712,0.0039478405,0.00033369617,0.0001156643,0.00050574663,0.0002731214,0.096628],"genre_scores_gemma":[0.97781247,0.0006362306,0.01917293,0.00015357522,0.00013671722,0.00007092472,0.00010599465,0.000053674405,0.0018574136],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99765956,0.0006527357,0.000114521485,0.00030052755,0.00090158574,0.00037107756],"domain_scores_gemma":[0.9720624,0.02257283,0.0016673027,0.002341553,0.0009132285,0.00044266827],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.004046788,0.0005075814,0.00048537413,0.0025337322,0.0013975764,0.004680323,0.0013118171,0.0010157548,0.0042701783],"category_scores_gemma":[0.023627404,0.00034691195,0.00036715317,0.0018768231,0.0057149148,0.009445034,0.0041930513,0.0020614816,0.0002159589],"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":[0.00006616579,0.000028544668,0.00074433297,0.000059636368,0.000008491307,0.000028631364,0.000079353005,0.0075369645,0.0025683478,0.98276895,0.0002527882,0.0058577955],"study_design_scores_gemma":[0.000010178442,0.00004408682,0.0010638699,0.000048476544,0.000010160712,0.000058578025,0.00013402085,0.08574436,0.0072717667,0.9041666,0.0014126287,0.000035297115],"about_ca_topic_score_codex":0.0009943396,"about_ca_topic_score_gemma":0.001111915,"teacher_disagreement_score":0.004680323,"about_ca_system_score_codex":0.0019494625,"about_ca_system_score_gemma":0.0011101543,"threshold_uncertainty_score":0.021401703},"labels":[],"label_agreement":null},{"id":"W3111550718","doi":"10.1364/quantum.2020.qw6a.2","title":"Monolithically integrated membrane-in-the-middle cavity optomechanical systems","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Mechanical and Optical Resonators","field":"Physics and Astronomy","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":"","keywords":"Surface micromachining; Materials science; Silicon nitride; Membrane; Optoelectronics; Silicon; Embedding; Resonance (particle physics); Fabry–Pérot interferometer; Chip; Microelectromechanical systems; Fabrication; Chemistry; Physics; Engineering; Computer science; Electrical engineering","score_opus":0.06720531622623964,"score_gpt":0.26053962999592095,"score_spread":0.1933343137696813,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3111550718","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.7982751,0.0026856677,0.18500732,0.0006667309,0.0006919769,0.00022810722,0.0005506879,0.00187925,0.010015099],"genre_scores_gemma":[0.8859827,0.0004546523,0.10931857,0.00012453528,0.00007016778,0.00013208909,0.00014043682,0.00004417242,0.0037327805],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.999749,0.000021914115,0.0000132178375,0.00006257706,0.0001045472,0.000048806647],"domain_scores_gemma":[0.99986744,0.000027243033,0.00002616888,0.000025257974,0.00003066056,0.000023161514],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00028224144,0.000314954,0.0003640981,0.00012767223,0.00035332036,0.0004684571,0.0011734471,0.0008231312,0.0013953303],"category_scores_gemma":[0.0002470406,0.00029777474,0.00024706885,0.0001323223,0.00026696842,0.00086258684,0.0007270617,0.00051562826,0.00066886074],"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":[0.000050251718,0.00003862252,0.00012521957,0.000045782428,0.00000909852,0.000048737787,0.000025980624,0.0008923195,0.9914625,0.0023982648,0.00025428846,0.004648845],"study_design_scores_gemma":[0.000055755856,0.0003677878,0.0009650415,0.000009693637,0.000026620884,0.00016850079,0.000027154116,0.03256497,0.9536526,0.00089783006,0.011218944,0.000045081906],"about_ca_topic_score_codex":0.0004533352,"about_ca_topic_score_gemma":0.001296339,"teacher_disagreement_score":0.0013953303,"about_ca_system_score_codex":0.0005513203,"about_ca_system_score_gemma":0.00039790172,"threshold_uncertainty_score":0.004667878},"labels":[],"label_agreement":null},{"id":"W3111990730","doi":"10.1364/quantum.2020.qw6a.17","title":"Experimental Demonstration of Multi-Parameter Estimation at the Ultimate Quantum Limit","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Laser-Matter Interactions and Applications","field":"Physics and Astronomy","cited_by":2,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Waterloo","funders":"","keywords":"Quantum; Centroid; Offset (computer science); Estimation theory; Photon; Limit (mathematics); Statistical physics; Upper and lower bounds; Quantum limit; Physics; Algorithm; Computer science; Statistics; Computational physics; Mathematics; Optics; Quantum mechanics; Mathematical analysis; Artificial intelligence","score_opus":0.055909452060266665,"score_gpt":0.30744352127640595,"score_spread":0.2515340692161393,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3111990730","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.65804815,0.0005117655,0.3214394,0.001128916,0.00012138265,0.00012628011,0.00039547795,0.0012484968,0.016980145],"genre_scores_gemma":[0.9246917,0.00008111059,0.07374858,0.00008405997,0.000023775825,0.00006654183,0.00006760815,0.00005070942,0.0011858462],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.99870956,0.00023068103,0.000055867153,0.00024996742,0.00063727587,0.00011666211],"domain_scores_gemma":[0.9976515,0.0010950897,0.00037241753,0.00045979794,0.00024415072,0.00017709605],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.0014352403,0.0003313816,0.0004350535,0.00044267715,0.00070593785,0.00085557246,0.0013429348,0.0010660326,0.0033924005],"category_scores_gemma":[0.0033905278,0.00046827135,0.000112639595,0.000607759,0.0010686462,0.0014840015,0.0022061907,0.0012072386,0.0006687769],"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":[0.0005698835,0.00019501914,0.0047978736,0.0001034792,0.0000536474,0.00028299206,0.00031160522,0.0043654917,0.93851936,0.021988828,0.0006985429,0.0281132],"study_design_scores_gemma":[0.00007839234,0.00045695636,0.0056362743,0.000037239926,0.00003711774,0.0008084997,0.00009437956,0.1230974,0.8534962,0.010976888,0.0051848083,0.00009589673],"about_ca_topic_score_codex":0.00037377942,"about_ca_topic_score_gemma":0.0007945722,"teacher_disagreement_score":0.0033924005,"about_ca_system_score_codex":0.0004777097,"about_ca_system_score_gemma":0.0004995891,"threshold_uncertainty_score":0.011348724},"labels":[],"label_agreement":null},{"id":"W3112491965","doi":"10.1364/quantum.2020.qth7a.2","title":"Quantum-Enhanced Rotation Sensing","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Mechanical and Optical Resonators","field":"Physics and Astronomy","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 Toronto","funders":"","keywords":"Rotation (mathematics); Quantum; Quantum sensor; Computer science; Quantum state; Quantum computer; Physics; Quantum network; Quantum mechanics; Artificial intelligence","score_opus":0.03557431880703299,"score_gpt":0.26012391787848643,"score_spread":0.22454959907145344,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3112491965","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":[0.32086802,0.016828476,0.5577867,0.0037297707,0.0023310478,0.00025180186,0.0010848859,0.002833113,0.094286144],"genre_scores_gemma":[0.92743266,0.002408946,0.06332256,0.00080099603,0.00024191641,0.00006292275,0.00019255922,0.00006257072,0.0054748193],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9993425,0.00014461298,0.000021820639,0.00017271105,0.00022244932,0.00009590658],"domain_scores_gemma":[0.99966514,0.0001178102,0.00005984154,0.00007272044,0.000051361312,0.00003316284],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00046510264,0.0002924025,0.00030367207,0.0002478016,0.00026050417,0.0005352703,0.0008208992,0.0007261767,0.005455103],"category_scores_gemma":[0.0012010542,0.00023891567,0.0001854279,0.00035385665,0.0010734868,0.0013227976,0.0013992192,0.0007655403,0.001186168],"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":[0.00016858106,0.0000936197,0.00056883955,0.00041166824,0.000027044083,0.00014404493,0.000142593,0.0033381805,0.8241011,0.10763657,0.0063801496,0.056987666],"study_design_scores_gemma":[0.000059900995,0.00034303623,0.0010963557,0.00006265823,0.000026417703,0.0004003839,0.00006275673,0.0700983,0.83823293,0.024092322,0.06539714,0.00012785742],"about_ca_topic_score_codex":0.00020682358,"about_ca_topic_score_gemma":0.0005018698,"teacher_disagreement_score":0.005455103,"about_ca_system_score_codex":0.00040685458,"about_ca_system_score_gemma":0.00021704758,"threshold_uncertainty_score":0.018249154},"labels":[],"label_agreement":null},{"id":"W3113054150","doi":"10.1364/quantum.2020.qtu8a.5","title":"Compressive Sensing of Photonic Qudits through Positivity Constraints.","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Neural Networks and Reservoir Computing","field":"Computer Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Ottawa","funders":"","keywords":"Photonics; ENCODE; Compressed sensing; Angular momentum; Quantum; Rank (graph theory); Physics; Computer science; Quantum entanglement; Orbital angular momentum multiplexing; Orbital angular momentum of light; Total angular momentum quantum number; Optics; Algorithm; Quantum mechanics; Mathematics; Gene","score_opus":0.05331888991184883,"score_gpt":0.2606950183047212,"score_spread":0.20737612839287237,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3113054150","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":[0.06983915,0.0005436643,0.8992416,0.001498963,0.00022152826,0.00010793614,0.0005366931,0.00027332088,0.027737135],"genre_scores_gemma":[0.82556313,0.00043328642,0.1677829,0.00044280174,0.000121547026,0.00011879878,0.00039560828,0.000059598075,0.005082345],"study_design_codex":"theoretical_or_conceptual","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99942905,0.00019833317,0.000022472388,0.00008108594,0.00021286427,0.00005605272],"domain_scores_gemma":[0.99851424,0.0008003409,0.00020607025,0.00024273948,0.00015752517,0.000079161655],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00092418084,0.0004811094,0.00031339916,0.00046936623,0.0003641206,0.00079773884,0.00079832016,0.00074774603,0.0037965544],"category_scores_gemma":[0.00484204,0.00023274185,0.00018249237,0.0003879039,0.0015352081,0.0019873865,0.0016012426,0.0013017277,0.0004552439],"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":[0.00033904985,0.000104629544,0.0007263506,0.00031027535,0.00003371518,0.00025742952,0.00021195074,0.0611543,0.09712316,0.7533562,0.0054535554,0.08092937],"study_design_scores_gemma":[0.00004146833,0.00009264937,0.00034258587,0.000051005456,0.000008115764,0.0001493577,0.000064690605,0.75623566,0.034617342,0.20466724,0.0036878374,0.00004210128],"about_ca_topic_score_codex":0.00061629043,"about_ca_topic_score_gemma":0.00084383995,"teacher_disagreement_score":0.0037965544,"about_ca_system_score_codex":0.00042064517,"about_ca_system_score_gemma":0.00067827123,"threshold_uncertainty_score":0.0127007365},"labels":[],"label_agreement":null},{"id":"W3113159492","doi":"10.1364/quantum.2020.qw6b.1","title":"Gauge-Independent Emission Spectra in the Ultrastrong Coupling Regime","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Strong Light-Matter Interactions","field":"Physics and Astronomy","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":"Queen's University","funders":"","keywords":"Spectral line; Physics; Gauge (firearms); Coupling (piping); Gauge theory; Invariant (physics); Quantum electrodynamics; Quantum mechanics; Materials science","score_opus":0.036601845152574426,"score_gpt":0.27496006333357026,"score_spread":0.23835821818099584,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3113159492","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.8925938,0.0010000551,0.061916035,0.0005175403,0.00012665556,0.00005496457,0.0004484621,0.00087132526,0.042471174],"genre_scores_gemma":[0.99552935,0.00015400173,0.0033707572,0.000039977498,0.000009122034,0.000020762098,0.00008968555,0.00006465509,0.0007217146],"study_design_codex":"bench_or_experimental","study_design_gemma":"theoretical_or_conceptual","domain_scores_codex":[0.99978834,0.000044793185,0.000008845134,0.0000593659,0.000058242316,0.000040375136],"domain_scores_gemma":[0.9993617,0.00028691077,0.0000894804,0.00011265619,0.00007853539,0.0000707272],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00046421684,0.0005741696,0.00036563724,0.0012876384,0.0006288877,0.0008637444,0.0012150621,0.0007534649,0.005099896],"category_scores_gemma":[0.0010280233,0.00018803518,0.00028126393,0.0007130645,0.0014084425,0.0012012356,0.000627298,0.0011946753,0.0004501836],"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":[0.0003951302,0.00023381916,0.0042091683,0.00048635498,0.00005770711,0.000828025,0.0009287246,0.016359087,0.65589726,0.3019531,0.0017672065,0.016884366],"study_design_scores_gemma":[0.000087243454,0.0002183557,0.0113578085,0.00011415537,0.00005472755,0.0006794586,0.00035687131,0.35447437,0.44486403,0.18421602,0.0034360592,0.0001409163],"about_ca_topic_score_codex":0.00034317892,"about_ca_topic_score_gemma":0.00044538925,"teacher_disagreement_score":0.005099896,"about_ca_system_score_codex":0.000577191,"about_ca_system_score_gemma":0.00024754187,"threshold_uncertainty_score":0.017060816},"labels":[],"label_agreement":null},{"id":"W3113171238","doi":"10.1364/quantum.2020.qth7a.5","title":"High-fidelity quantum teleportation of time-bin qubits at telecommunication wavelength","year":2020,"lang":"en","type":"article","venue":"OSA Quantum 2.0 Conference","topic":"Quantum Information and Cryptography","field":"Computer Science","cited_by":0,"is_retracted":false,"has_abstract":true,"route_ca_aff":true,"route_ca_fund":false,"route_ca_venue":false,"route_about_ca":false,"ca_institutions":"University of Calgary","funders":"","keywords":"Quantum teleportation; Teleportation; Qubit; Quantum entanglement; Fidelity; Quantum network; Quantum channel; Computer science; Superdense coding; Bin; Physics; Telecommunications; Quantum; Quantum mechanics","score_opus":0.02653470698616676,"score_gpt":0.2374780225642447,"score_spread":0.21094331557807794,"validation_status":"score_only:v0-immature-baseline","prediction":{"id":"W3113171238","genre_codex":"empirical","genre_gemma":"empirical","domain_codex":null,"domain_gemma":null,"model_version":"metacan-v3-hybrid-931329e0061c","genre_candidate":"empirical","genre_consensus":"empirical","domain_candidate":null,"domain_consensus":null,"prediction_status":"machine_predicted_unvalidated","genre_scores_codex":[0.90714663,0.00039373222,0.06624906,0.0006012177,0.00020690601,0.000093741444,0.00030448576,0.00073438656,0.024269914],"genre_scores_gemma":[0.97872823,0.00013196377,0.01806766,0.00007104776,0.000019544097,0.000021525078,0.000091120535,0.00007388581,0.0027949626],"study_design_codex":"bench_or_experimental","study_design_gemma":"bench_or_experimental","domain_scores_codex":[0.9997018,0.000036280795,0.000010138871,0.000040640276,0.00016519966,0.00004589363],"domain_scores_gemma":[0.99948835,0.00017858905,0.0001107517,0.00013328293,0.000051042432,0.000037898248],"candidate_categories":[],"consensus_categories":[],"category_scores_codex":[0.00047163473,0.00019971884,0.00018785131,0.00021593542,0.0005537162,0.0006481814,0.0005272675,0.00045983904,0.005277032],"category_scores_gemma":[0.0010494755,0.00016094495,0.000103238286,0.00035149223,0.0007734269,0.0014282819,0.00079752674,0.0007859168,0.00055387587],"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":[0.0002977619,0.00017554387,0.0014777753,0.00014523068,0.000021525188,0.0002267313,0.00025381663,0.002985836,0.90855676,0.06506178,0.0017746491,0.019022621],"study_design_scores_gemma":[0.000033328924,0.00018481203,0.0012593593,0.000013305438,0.000008097075,0.0002975829,0.000050091465,0.020841952,0.96481866,0.0050896094,0.0073692277,0.00003395408],"about_ca_topic_score_codex":0.0004856377,"about_ca_topic_score_gemma":0.001018174,"teacher_disagreement_score":0.005277032,"about_ca_system_score_codex":0.0003500818,"about_ca_system_score_gemma":0.00032393023,"threshold_uncertainty_score":0.017653465},"labels":[],"label_agreement":null}]}