COMPSCI 571D

Probabilistic Machine Learning

Duke University · UGRD · Fall 2026

1 section
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Introduction to concepts in probabilistic machine learning with a focus on discriminative and hierarchical generative models. Topics include directed and undirected graphical models, kernel methods, exact and approximate parameter estimation methods, and structure learning. Prerequisite: Linear algebra, Statistical Science 250 or Statistical Science 611.

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Class #duke-COMPSCI571DFall 2026UGRD3 credits
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