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A Gapped Scale-Sensitive Dimension and Lower Bounds for Offset Rademacher Complexity

Published 24 Sep 2025 in stat.ML, cs.LG, math.ST, and stat.TH | (2509.20618v1)

Abstract: We study gapped scale-sensitive dimensions of a function class in both sequential and non-sequential settings. We demonstrate that covering numbers for any uniformly bounded class are controlled above by these gapped dimensions, generalizing the results of \cite{anthony2000function,alon1997scale}. Moreover, we show that the gapped dimensions lead to lower bounds on offset Rademacher averages, thereby strengthening existing approaches for proving lower bounds on rates of convergence in statistical and online learning.

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