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4,299,418 works, Canadian by any of four routes.

Every filter state is a URL; the URL is the query; the query is citable via /q/⟨hash⟩. The page, the API and the export parse the same parameters.

The current cohort, streamed from the database: every work column, the machine labels, the provisional scores, and the per-row validation status. Exports are capped at 100,000 rows. Mints a permanent /q/ link for this exact query. The same filters always produce the same link, whoever asks.

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Electronic and Structural Properties of Oxides
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Direct Codex and Gemma labels are unvalidated and sparse. Distilled predictions cover the full frame and are also unvalidated. Choose the evidence source explicitly; absence of a direct label is never a negative label.

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The four routes compose: require the funder route and exclude affiliation to get the funder-only stratum no affiliation-based frame ever sees.

319 results · 1 filter active ·
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20002025
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Machine labels · sparse coverage
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An unlabeled work is unknown, not a negative. Label coverage is reported on every query.
319 works in the cohort · of 4,299,418page 2 of 7

Labels cover 1 of 319 works in this cohort. The rest are unlabeled, which is not a negative label: the label table is sparse today and grows as labeling rounds land.

Distilled predictions cover 319 of 319 works in this cohort. Predictions are machine_predicted_unvalidated. The Gemma side is a direct model label for every work (title-only); the Codex side is a distilled, calibrated classifier. Candidate is the union; consensus is the intersection.

affno abstractunlabeled
Real-space mapping of electronic orbitals
Stefan Löffler, Matthieu Bugnet, Nicolas Gauquelin, Sorin Lazar, Elias Assmann, Karsten Held +2 more
2017· article· en· Ultramicroscopy· Materials Science
machine prediction:candidate · noneconsensus · none
25
citations
afffundunlabeled
Roadmap on atomic-scale semiconductor devices
Steven R. Schofield, A. J. Fisher, Eran Ginossar, Joseph W. Lyding, Richard M. Silver, Fan Fei +44 more
2025· article· en· Nano Futures· Materials Science
machine prediction:candidate · noneconsensus · none
20
citations
affunlabeled
Resonant indirect optical absorption in germanium
J. Menéndez, Mario Noël, Joanne C. Zwinkels, D. J. Lockwood
2017· article· en· Physical review. B./Physical review. B· Materials Science
machine prediction:candidate · noneconsensus · none
19
citations
affunlabeled
Patchwork field emission properties of lanthanum monosulfide thin films
V. Semet, M. Cahay, Vu Thien Binh, Steven B. Fairchild, Xin Wu, D. J. Lockwood
2006· article· en· Journal of Vacuum Science & Technology B Microelectronics and Nanometer Structures Processing Measurement and Phenomena· Materials Science
machine prediction:candidate · noneconsensus · none
19
citations
affno abstractunlabeled
Optical Sum Rule in Finite Bands
2006· article· en· Journal of Low Temperature Physics· Materials Science
machine prediction:candidate · noneconsensus · none
18
citations
afffundunlabeled
Performance Prediction of High‐Entropy Perovskites La <sub>0.8</sub> Sr <sub>0.2</sub> Mn <sub>x</sub> Co <sub>y</sub> Fe <sub>z</sub> O <sub>3</sub> with Automated High‐Throughput Characterization of Combinatorial Libraries and Machine Learning
Carlota Bozal‐Ginesta, Giulio Cordaro, Sarah Fearn, Sergio Pablo‐García, Francesco Chiabrera, Changhyeok Choi +11 more
2024· article· en· Advanced Materials· Materials Science
machine prediction:candidate · noneconsensus · none
16
citations
afffundno abstractunlabeled
How to build an effective self-driving laboratory
Benjamin P. MacLeod, Fraser G. L. Parlane, Curtis P. Berlinguette
2023· article· en· MRS Bulletin· Materials Science
machine prediction:candidate · noneconsensus · none
15
citations

How this was built: Screen · Findings · About