Differentially Private Approximate Quantiles
Haim Kaplan, Shachar Schnapp, Uri Stemmer
2022年份
23被引次数
12顶会引用
摘要
In this work we study the problem of differentially private (DP) quantiles, in which given dataset and quantiles , we want to output quantile estimations which are as close as possible to the true quantiles and preserve DP. We describe a simple recursive DP algorithm, which we call ApproximateQuantiles (AQ), for this task. We give a worst case upper bound on its error, and show that its error is much lower than of previous implementations on several different datasets. Furthermore, it gets this low error while running time two orders of magnitude faster that the best previous implementation.
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引用它的顶会 Paper12
- DPXPlain: Privately Explaining Aggregate Query AnswersYuchao Tao, Amir Gilad, Ashwin Machanavajjhala, Sudeepa RoyVLDB 2023 · 被引用 15 次
- Unbounded Differentially Private Quantile and Maximum EstimationDavid DurfeeNeurIPS 2023 · 被引用 14 次
- Archimedes Meets Privacy: On Privately Estimating Quantiles in High Dimensions Under Minimal AssumptionsOmri Ben-Eliezer, Dan Mikulincer, Ilias ZadikNeurIPS 2022 · 被引用 11 次
- Instance-Optimal Private Density Estimation in the Wasserstein DistanceVitaly Feldman, Audra McMillan, Satchit Sivakumar, Kunal TalwarNeurIPS 2024 · 被引用 10 次
- Learning-augmented private algorithms for multiple quantile releaseMikhail Khodak, Kareem Amin, Travis Dick, Sergei VassilvitskiiICML 2023 · 被引用 7 次
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