Deep generative models for single-cell omics. Use when you need probabilistic batch correction (scVI), transfer learning, differential expression with uncertainty, or multi-modal integration (TOTALVI, MultiVI). Best for advanced modeling, batch effects, multimodal data. For standard analysis pipelines use scanpy.
用于单细胞组学的深度生成模型。当需要概率性批次校正(scVI)、迁移学习、带不确定性差异表达分析或多模态整合(TOTALVI、MultiVI)时使用。最适合高级建模、批次效应和多模态数据。标准分析流程请使用scanpy。
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