Private Learning of Halfspaces: Simplifying the Construction and Reducing the Sample Complexity
Haim Kaplan, Yishay Mansour, Uri Stemmer, Eliad Tsfadia
2020年份
20被引次数
11顶会引用
摘要
We present a differentially private learner for halfspaces over a finite grid in with sample complexity , which improves the state-of-the-art result of [Beimel et al., COLT 2019] by a factor. The building block for our learner is a new differentially private algorithm for approximately solving the linear feasibility problem: Given a feasible collection of linear constraints of the form , the task is to privately identify a solution that satisfies most of the constraints. Our algorithm is iterative, where each iteration determines the next coordinate of the constructed solution .
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引用它的顶会 Paper11
- Littlestone Classes are Privately Online LearnableNoah Golowich, Roi LivniNeurIPS 2021 · 被引用 15 次
- Replicable Learning of Large-Margin HalfspacesAlkis Kalavasis, Amin Karbasi, Kasper Green Larsen, Grigoris Velegkas 等ICML 2024 · 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
- Borsuk-Ulam and Replicable Learning of Large-Margin HalfspacesAri Blondal, Hamed Hatami, Pooya Hatami, Chavdar Lalov 等STOC 2026 · 被引用 8 次
- On the Sample Complexity of Privately Learning Axis-Aligned RectanglesMenachem Sadigurschi, Uri StemmerNeurIPS 2021 · 被引用 7 次
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