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Differentially Private Empirical Cumulative Distribution Functions

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arxiv 2502.06651 v1 pith:GGXTWSLI submitted 2025-02-10 cs.CR

classification cs.CR
keywords privacyfunctionsdatadifferentiallydistributionempiricallearnprivate
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In order to both learn and protect sensitive training data, there has been a growing interest in privacy preserving machine learning methods. Differential privacy has emerged as an important measure of privacy. We are interested in the federated setting where a group of parties each have one or more training instances and want to learn collaboratively without revealing their data. In this paper, we propose strategies to compute differentially private empirical distribution functions. While revealing complete functions is more expensive from the point of view of privacy budget, it may also provide richer and more valuable information to the learner. We prove privacy guarantees and discuss the computational cost, both for a generic strategy fitting any security model and a special-purpose strategy based on secret sharing. We survey a number of applications and present experiments.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Dropout-Robust Mechanisms for Differentially Private and Fully Decentralized Mean Estimation

    cs.CR 2025-06 conditional novelty 7.0 of 10

    IncA is a fully decentralized, differentially private mean-estimation protocol whose correlated noise cancels in the no-dropout case, achieving central-DP accuracy under a strong adversarial model.

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