Reliable Learning of Halfspaces under Gaussian Marginals
Ilias Diakonikolas, Lisheng Ren, Nikos Zarifis
摘要
We study the problem of PAC learning halfspaces in the reliable agnostic model of Kalai et al. (2012). The reliable PAC model captures learning scenarios where one type of error is costlier than the others. Our main positive result is a new algorithm for reliable learning of Gaussian halfspaces on with sample and computational complexity where is the excess error and is the bias of the optimal halfspace. We complement our upper bound with a Statistical Query lower bound suggesting that the dependence is best possible. Conceptually, our results imply a strong computational separation between reliable agnostic learning and standard agnostic learning of halfspaces in the Gaussian setting.
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- Near-Optimal SQ Lower Bounds for Agnostically Learning Halfspaces and ReLUs under Gaussian MarginalsIlias Diakonikolas, Daniel Kane, Nikos ZarifisNeurIPS 2020 · 被引用 80 次
- Statistical-Query Lower Bounds via Functional GradientsSurbhi Goel, Aravind Gollakota, Adam R. KlivansNeurIPS 2020 · 被引用 72 次
- Beyond Perturbations: Learning Guarantees with Arbitrary Adversarial Test ExamplesShafi Goldwasser, Adam Tauman Kalai, Yael Kalai, Omar MontasserNeurIPS 2020 · 被引用 57 次
- Efficient active learning of sparse halfspaces with arbitrary bounded noiseChicheng Zhang, Jie Shen, Pranjal AwasthiNeurIPS 2020 · 被引用 50 次
- Near-Optimal Cryptographic Hardness of Agnostically Learning Halfspaces and ReLU Regression under Gaussian MarginalsIlias Diakonikolas, Daniel Kane, Lisheng RenICML 2023 · 被引用 40 次
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