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STOC2025顶会

Discrepancy Algorithms for the Binary Perceptron

Shuangping Li, Tselil Schramm, Kangjie Zhou

2025年份
1被引次数
1顶会引用

摘要

The binary perceptron problem asks us to find a sign vector in the intersection of independently chosen random halfspaces with intercept -κ. We analyze the performance of the canonical discrepancy minimization algorithms of Lovett-Meka and Rothvoss/Eldan-Singh for the asymmetric binary perceptron problem. We obtain new algorithmic results in the κ = 0 case and in the large-|κ| case. In the κ → -∞ case, we additionally characterize the storage capacity and complement our algorithmic results with an almost-matching overlap-gap lower bound. Contents

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