LiQian-XC / sctour

A deep learning architecture for robust inference and accurate prediction of cellular dynamics
https://sctour.readthedocs.io
MIT License
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deep-learning inference-and-prediction latent-space pseudotime single-cell-genomics vector-field

scTour

scTour is an innovative and comprehensive method for dissecting cellular dynamics by analysing datasets derived from single-cell genomics.

It provides a unifying framework to depict the full picture of developmental processes from multiple angles including the developmental pseudotime, vector field and latent space.

It further generalises these functionalities to a multi-task architecture for within-dataset inference and cross-dataset prediction of cellular dynamics in a batch-insensitive manner.

Key features

Installation

PyPI

pip install sctour

Conda

conda install -c conda-forge sctour

Documentation

Documentation Status

Full documentation can be found here.

Reference

Qian Li, scTour: a deep learning architecture for robust inference and accurate prediction of cellular dynamics. Genome Biology, 2023