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On the Correlation Gap of Matroids

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arxiv 2209.09896 v3 pith:S6E5FBYV submitted 2022-09-20 math.OC cs.DScs.GT

classification math.OCcs.DScs.GT
keywords correlationmatroidrankfunctiondesignfunctionsimprovedlower
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abstract

A set function can be extended to the unit cube in various ways; the correlation gap measures the ratio between two natural extensions. This quantity has been identified as the performance guarantee in a range of approximation algorithms and mechanism design settings. It is known that the correlation gap of a monotone submodular function is at least $1-1/e$, and this is tight for simple matroid rank functions. We initiate a fine-grained study of the correlation gap of matroid rank functions. In particular, we present an improved lower bound on the correlation gap as parametrized by the rank and girth of the matroid. We also show that for any matroid, the correlation gap of its weighted matroid rank function is minimized under uniform weights. Such improved lower bounds have direct applications for submodular maximization under matroid constraints, mechanism design, and contention resolution schemes.

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  1. A Correlation-Gap Bound for Nonlinear Gaussian PCA

    cs.DS 2026-07 accept novelty 7.0 of 10

    For any Gaussian vector and any orthonormal basis, expected adaptive-top-d retained energy is at most (1+O(1/√d)) times that of the Karhunen–Loève basis.

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