Stronger Privacy Amplification by Shuffling for Renyi and Approximate Differential Privacy
Vitaly Feldman, Audra McMillan, Kunal Talwar
2023年份
23被引次数
5顶会引用
摘要
The shuffle model of differential privacy has gained significant interest as an intermediate trust model between the standard local and central models [18, 12]. A key result in this model is that randomly shuffling locally randomized data amplifies differential privacy guarantees. Such amplification implies substantially stronger privacy guarantees for systems in which data is contributed anonymously [8].
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- Differentially Private Learning Needs Hidden State (Or Much Faster Convergence)Jiayuan Ye, Reza ShokriNeurIPS 2022 · 被引用 62 次
- To Shuffle or not to Shuffle: Auditing DP-SGD with ShufflingMeenatchi Sundaram Muthu Selva Annamalai, Borja Balle, Jamie Hayes, Emiliano De CristofaroNDSS 2026 · 被引用 11 次
- Privacy Amplification by Sampling under User-level Differential PrivacyJuanru Fang, Ke YiSIGMOD 2024 · 被引用 4 次
- Decomposition-Based Optimal Bounds for Privacy Amplification via ShufflingPengcheng Su, Haibo Cheng, Ping WangS&P 2026 · 被引用 4 次
- Fundamental Limitations of Favorable Privacy–Utility Guarantees for DP-SGDMurat Bilgehan Ertan), Marten van Dijk)CCS 2026 · 被引用 3 次
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