The Structure of Optimal Private Tests for Simple Hypotheses
Abstract
Hypothesis testing plays a central role in statistical inference, and is used in many settings where privacy concerns are paramount. This work answers a basic question about privately testing simple hypotheses: given two distributions and , and a privacy level , how many i.i.d. samples are needed to distinguish from subject to -differential privacy, and what sort of tests have optimal sample complexity? Specifically, we characterize this sample complexity up to constant factors in terms of the structure of and and the privacy level , and show that this sample complexity is achieved by a certain randomized and clamped variant of the log-likelihood ratio test. Our result is an analogue of the classical Neyman-Pearson lemma in the setting of private hypothesis testing. We also give an application of our result to the private change-point detection. Our characterization applies more generally to hypothesis tests satisfying essentially any notion of algorithmic stability, which is known to imply strong generalization bounds in adaptive data analysis, and thus our results have applications even when privacy is not a primary concern.
Cite
@article{arxiv.1811.11148,
title = {The Structure of Optimal Private Tests for Simple Hypotheses},
author = {Clément L. Canonne and Gautam Kamath and Audra McMillan and Adam Smith and Jonathan Ullman},
journal= {arXiv preprint arXiv:1811.11148},
year = {2019}
}
Comments
To appear in STOC 2019