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Covariance loss, Szemeredi regularity, and differential privacy

  • Proceedings of the American Mathematical Society
  • American Mathematical Society
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Abstract

We show how randomized rounding based on Grothendieck's identity can be used to prove a nearly tight bound on the covariance loss-the amount of covariance that is lost by taking conditional expectation. This result yields a new type of weak Szemeredi regularity lemma for positive semidefinite matrices and kernels. Moreover, it can be used to construct differentially private synthetic data.

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DOI
10.1090/proc/17126
OpenAlex
W4406171508
Document type
article
Language
EN
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Proceedings of the American Mathematical Society
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