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The Test of Tests: A Framework For Differentially Private Hypothesis Testing

A black-box framework for creating differentially private hypothesis tests demonstrates good performance on small datasets and superior power compared to other generic and specifically designed methods.

Year
2023
Venue
arXiv 2023
Authors
4
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arxiv.org/abs/2302.04260ARXIV-DEFAULT
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Abstract

We present a generic framework for creating differentially private versions of any hypothesis test in a black-box way. We analyze the resulting tests analytically and experimentally. Most crucially, we show good practical performance for small data sets, showing that at epsilon = 1 we only need 5-6 times as much data as in the fully public setting. We compare our work to the one existing framework of this type, as well as to several individually-designed private hypothesis tests. Our framework is higher power than other generic solutions and at least competitive with (and often better than) individually-designed tests.

Authors

4