A Python package to mix-and-match conflicting clustering results in single cell analysis, and generate reconciled clustering solutions.
Project description
scTriangulate
scTriangulate is a Python package to mix-and-match conflicting clustering results in single cell analysis, and generate reconciled clustering solutions.
scTriangulate leverages cooperative game theory (Shapley Value) in conjunction with complimentary stability metrics (i.e. reassign score, TFIDF score and SCCAF score) to intelligently integrate clustering solutions from nearly unlimited sources. Applied to multimodal datasets, this approach highlights new cell populations and mechanisms underlying lineage diversity.
Tutorials and Installation
Check our full documentation and step-by-step tutorials.
Overview
It can be used in an array of settings:
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Integrate results from the same or multiple unsupervised clustering algorithms (i.e. Leiden, Seurat, SnapATAC) using different resolutions.
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Integrate results from both unsupervised and supervised (i.e. cellHarmony, Seurat label transfer) clustering algorithms.
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Integrate results from different reference atlases.
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Integrate labels from multi-modality single cell datasets (CITE-Seq, Multiome, TEA-Seq, ASAP-Seq, etc.).
Citation
scTriangulate: Decision-level integration of multimodal single-cell data. BioRxiv. Oct 2021 (https://www.biorxiv.org/content/10.1101/2021.10.16.464640v1)
Reproducibility
All scripts for reproducing the analyses in the preprint are available in the reproduce folder, along with all the necessary input files and intermediate outputs which are avaiable in Synapse storage.
Contact
Guangyuan(Frank) Li
Email: li2g2@mail.uc.edu
PhD student, Biomedical Informatics
Cincinnati Children’s Hospital Medical Center(CCHMC)
University of Cincinnati, College of Medicine
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