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STAT 862  Statistical Learning I  Units: 3.00  
A working knowledge of the statistical software R is assumed. Classification; spline and smoothing spline; regularization, ridge regression, and Lasso; model selection; treedbased methods; resampling methods; importance sampling; Markov chain Monte Carlo; Metropolis-Hasting algorithm; Gibbs sampling; optimization. (Offered jointly with STAT 462.) (3.0 credit units)
EXCLUSION: STAT 462
Offering Faculty: Faculty of Arts and Science