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Regularization in kernel learning

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Mendelson, Shahar
Neeman, Joseph

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Institute of Mathematical Statistics

Abstract

Under mild assumptions on the kernel, we obtain the best known error rates in a regularized learning scenario taking place in the corresponding reproducing kernel Hilbert space (RKHS). The main novelty in the analysis is a proof that one can use a regularization term that grows significantly slower than the standard quadratic growth in the RKHS norm.

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The Annals of Statistics

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