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Smooth Nonparametric Allocation of Classification
Authors:Asheber Abebe  Sai V. Nudurupati
Affiliation:1. Department of Mathematics and Statistics , Auburn University , Auburn, Alabama, USA abebeas@auburn.edu;3. Takeda Pharmaceuticals , Deerfield, Illinois, USA
Abstract:A nonparametric discriminant analysis procedure that is robust to deviations from the usual assumptions is proposed. The procedure uses the projection pursuit methodology where the projection index is the two-group transvariation probability. We use allocation based on the centrality of the new point measured using a smooth version of point-group transvariation. It is shown that the new procedure provides lower misclassification error rates than competing methods for data from skewed heavy-tailed and skewed distributions as well as unequal training data sizes.
Keywords:Data depth  Discriminant analysis  Mann–Whitney  Projection pursuit  Smoothing
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