STAT 983

Statistical Learning

University of Nebraska-Lincoln · UGRD · Fall 2026

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Model selection including sparsity methods and their oracle properties, information methods, cross-validation and stochastic search. Basic theory of kernel methods for regression. Classification: linear and quadratic discriminants, Bayes classifier, nearest neighbor methods, kernel methods for classification. Introduction to neural networks and recursive partitioning. Model averaging methods and measures of complexity. Cluster analysis.

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Class #nebraska_lincoln-STAT983Fall 2026UGRD3 credits
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