MétaCan
Menu
Cohort builder

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.

Search term
Author
Year range
→
Sort
Language
Type
Field
Venue
Methods in molecular biology
Topic
Retraction
Abstract
Evidence source
Study design
Label agreement
Label status

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.

affaffiliation
fundfunder
venuejournal
aboutaboutness

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

3,129 results · 1 filter active ·
Results by year
20022025
Publication date
Categories
Machine labels · sparse coverage
Evidence
Language
Type
Citations
An unlabeled work is unknown, not a negative. Label coverage is reported on every query.
3,129 works in the cohort · of 4,299,418page 25 of 63

Labels cover 13 of 3,129 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 3,129 of 3,129 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
Brief Survey on Machine Learning in Epistasis
Davide Chicco, Trent Faultless
2021· review· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Directed Evolution Methods to Rewire Signaling Networks
Raphaël B. Di Roberto, Benjamin M. Scott, Sergio G. Peisajovich
2017· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
RNA-Seq as a Tool to Study the Tumor Microenvironment
Pudchalaluck Panichnantakul, Mathieu Bourgey, Alexandre Montpetit, Guillaume Bourque, Yasser Riazalhosseini
2016· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Myofibroblasts
Boris Hinz, David Lagares
2021· book· en· Methods in molecular biology· Medicine
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
R-Loop Detection in Bacteria
Émilie Vlachos-Breton, Marc Drolet
2022· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
fundno affunlabeled
Yeast Systems Biology
Juan I. Castrillo, Stephen G. Oliver
2011· book· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
afffundaboutunlabeled
The Human Embryo: Ethical and Legal Aspects
Bartha Maria Knoppers, Sylvie Bordet, Rosario Isasi
2009· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
afffundunlabeled
Reptile Embryology
Matthew K. Vickaryous, Katherine McLean
2011· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affunlabeled
Seed Dormancy
Allison R. Kermode
2011· book· en· Methods in molecular biology· Agricultural and Biological Sciences
machine prediction:candidate · noneconsensus · none
8
citations
afffundno abstractunlabeled
Eosinophil Shape Change and Secretion
Lian Willetts, Sergei I. Ochkur, Elizabeth A. Jacobsen, James J. Lee, Paige Lacy
2014· article· en· Methods in molecular biology· Medicine
machine prediction:candidate · noneconsensus · none
8
citations
afffundunlabeled
Regulatory CD4– CD8– Double Negative T Cells
Edward Y. Kim, S. Juvet, Li Zhang
2010· article· en· Methods in molecular biology· Immunology and Microbiology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Using Models to (Re-)Design Synthetic Circuits
Giselle McCallum, Laurent Potvin-Trottier
2021· book-chapter· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Magnetic Nanoparticles for Protein Separation and Purification
Vadanasundari Vedarethinam, Jaison Jeevanandam, Caleb Acquah, Michael K. Danquah
2023· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Methodologies for Following EMT In Vivo at Single Cell Resolution
Abdull J. Massri, Geoffrey Schiebinger, Alejandro Berrío, Lingyu Wang, Gregory A. Wray, David R. McClay
2020· review· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations
affno abstractunlabeled
Analysis of Genotyping-by-Sequencing (GBS) Data
Sateesh Kagale, ChuShin Koh, Wayne E. Clarke, Venkatesh Bollina, Isobel A. P. Parkin, Andrew Sharpe
2015· article· en· Methods in molecular biology· Biochemistry, Genetics and Molecular Biology
machine prediction:candidate · noneconsensus · none
8
citations

How this was built: Screen · Findings · About