An Equivalence Between Private Classification and Online Prediction
Mark Bun, Roi Livni, Shay Moran
摘要
We prove that every concept class with finite Littlestone dimension can be learned by an (approximate) differentially-private algorithm. This answers an open question of Alon et al. (STOC 2019) who proved the converse statement (this question was also asked by Neel et al. (FOCS 2019)). Together these two results yield an equivalence between online learnability and private PAC learnability.
We introduce a new notion of algorithmic stability called "global stability" which is essential to our proof and may be of independent interest. We also discuss an application of our results to boosting the privacy and accuracy parameters of differentially-private learners.
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引用它的顶会 Paper44
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- A Limitation of the PAC-Bayes FrameworkRoi Livni, Shay MoranNeurIPS 2020 · 被引用 26 次
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