BMCS E4480

Statistical machine learning for genomics

Columbia University in the City of New York · UGRD · Fall 2026

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Recommended: COMS W4771 . Introduction to statistical machine learning methods using applications in genomic data and in particular high-dimensional single-cell data. Concepts of molecular biology relevant to genomic technologies, challenges of high-dimensional genomic data analysis, bioinformatics preprocessing pipelines, dimensionality reduction, unsupervised learning, clustering, probabilistic modeling, hidden Markov models, Gibbs sampling, deep neural networks, gene regulation. Programming assignments and final project will be required

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Class #columbia_in_city_new_york-BMCSE4480Fall 2026UGRD3.00 credits
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