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scDesign3 generates realistic in silico data for multimodal single-cell and spatial omics

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https://rdcu.be/dbUIh
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Creative Commons 'BY-NC-ND' version 4.0 license
Abstract

We present a statistical simulator, scDesign3, to generate realistic single-cell and spatial omics data, including various cell states, experimental designs and feature modalities, by learning interpretable parameters from real data. Using a unified probabilistic model for single-cell and spatial omics data, scDesign3 infers biologically meaningful parameters; assesses the goodness-of-fit of inferred cell clusters, trajectories and spatial locations; and generates in silico negative and positive controls for benchmarking computational tools.

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