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Update SKILL.md files to add double quotation marks for all skills, ensuring clarity and consistency across all entries.
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name: cellxgene-census
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description: Access, query, and analyze single-cell genomics data from the CZ CELLxGENE Census containing 61+ million cells from human and mouse. Use this skill for single-cell RNA-seq analysis, cell type identification, gene expression queries, tissue-specific analysis, disease studies, cross-dataset integration, machine learning model training, and large-scale genomics workflows. Supports filtering by cell type, tissue, disease, donor, and gene expression patterns. Provides both in-memory (AnnData) and out-of-core processing for datasets of any size. Integrates with PyTorch for ML workflows, scanpy for standard single-cell analysis, and supports batch processing for computational efficiency. Essential for exploring cell type diversity, marker gene analysis, differential expression studies, multi-tissue comparisons, COVID-19 research, developmental biology, and population-scale genomics projects.
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description: "Access, query, and analyze single-cell genomics data from the CZ CELLxGENE Census containing 61+ million cells from human and mouse. Use this skill for single-cell RNA-seq analysis, cell type identification, gene expression queries, tissue-specific analysis, disease studies, cross-dataset integration, machine learning model training, and large-scale genomics workflows. Supports filtering by cell type, tissue, disease, donor, and gene expression patterns. Provides both in-memory (AnnData) and out-of-core processing for datasets of any size. Integrates with PyTorch for ML workflows, scanpy for standard single-cell analysis, and supports batch processing for computational efficiency. Essential for exploring cell type diversity, marker gene analysis, differential expression studies, multi-tissue comparisons, COVID-19 research, developmental biology, and population-scale genomics projects."
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# CZ CELLxGENE Census
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