DS 453

BAYESIAN MODELS FOR DATA SCIENCE

Oregon State University-Cascades Campus · UGRD · Fall 2026

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Introduces main concepts of Bayesian analysis from the statistical foundations to model implementation. Reviews and implements a variety of widely used models from a Bayesian perspective including linear regression, Poisson and Negative Binomial regression, and logistic regression. Emphasizes the computational implementation of these models and discusses numerical approximations for posterior inference, including Markov Chain Monte Carlo approaches.

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Class #oregon_cascades_campus-2295Fall 2026UGRD4 credits
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