Private Online Learning via Lazy Algorithms
June 05, 2024 ยท Declared Dead ยท ๐ Neural Information Processing Systems
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Authors
Hilal Asi, Tomer Koren, Daogao Liu, Kunal Talwar
arXiv ID
2406.03620
Category
cs.LG: Machine Learning
Cross-listed
cs.CR,
cs.DS,
math.OC,
stat.ML
Citations
3
Venue
Neural Information Processing Systems
Last Checked
4 months ago
Abstract
We study the problem of private online learning, specifically, online prediction from experts (OPE) and online convex optimization (OCO). We propose a new transformation that transforms lazy online learning algorithms into private algorithms. We apply our transformation for differentially private OPE and OCO using existing lazy algorithms for these problems. Our final algorithms obtain regret, which significantly improves the regret in the high privacy regime $\varepsilon \ll 1$, obtaining $\sqrt{T \log d} + T^{1/3} \log(d)/\varepsilon^{2/3}$ for DP-OPE and $\sqrt{T} + T^{1/3} \sqrt{d}/\varepsilon^{2/3}$ for DP-OCO. We also complement our results with a lower bound for DP-OPE, showing that these rates are optimal for a natural family of low-switching private algorithms.
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