STAT 4630

Statistical Machine Learning

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Course Description

Pre-Requisite(s): A prior course in regression and a prior course in programming
Discipline(s): Quantification, Computation & Data Analysis

This course introduces various topics in machine learning, including regression, classification, resampling methods, linear model selection and regularization, tree-based methods, support vector machines, and unsupervised learning. The statistical software R is incorporated throughout.


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