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TCM visualizes trajectories and cell populations from single cell data.

Wuming GongIl-Youp KwakNaoko Koyano-NakagawaWei PanDaniel J Garry
Published in: Nature communications (2018)
Profiling single cell gene expression data over specified time periods are increasingly applied to the study of complex developmental processes. Here, we describe a novel prototype-based dimension reduction method to visualize high throughput temporal expression data for single cell analyses. Our software preserves the global developmental trajectories over a specified time course, and it also identifies subpopulations of cells within each time point demonstrating superior visualization performance over six commonly used methods.
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