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Learning bounded subsets of $L_p$

Published 4 Feb 2020 in stat.ML, cs.LG, math.ST, and stat.TH | (2002.01182v1)

Abstract: We study learning problems in which the underlying class is a bounded subset of $L_p$ and the target $Y$ belongs to $L_p$. Previously, minimax sample complexity estimates were known under such boundedness assumptions only when $p=\infty$. We present a sharp sample complexity estimate that holds for any $p > 4$. It is based on a learning procedure that is suited for heavy-tailed problems.

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