Attribute-Efficient PAC Learning of Low-Degree Polynomial Threshold Functions with Nasty Noise
Shiwei Zeng, Jie Shen
摘要
The concept class of low-degree polynomial threshold functions (PTFs) plays a fundamental role in machine learning. In this paper, we study PAC learning of -sparse degree- PTFs on , where any such concept depends only on out of attributes of the input. Our main contribution is a new algorithm that runs in time and under the Gaussian marginal distribution, PAC learns the class up to error rate with samples even when an fraction of them are corrupted by the nasty noise of Bshouty et al. (2002), possibly the strongest corruption model. Prior to this work, attribute-efficient robust algorithms are established only for the special case of sparse homogeneous halfspaces. Our key ingredients are: 1) a structural result that translates the attribute sparsity to a sparsity pattern of the Chow vector under the basis of Hermite polynomials, and 2) a novel attribute-efficient robust Chow vector estimation algorithm which uses exclusively a restricted Frobenius norm to either certify a good approximation or to validate a sparsity-induced degree- polynomial as a filter to detect corrupted samples.
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- Efficient active learning of sparse halfspaces with arbitrary bounded noiseChicheng Zhang, Jie Shen, Pranjal AwasthiNeurIPS 2020 · 被引用 50 次
- On the Power of Localized Perceptron for Label-Optimal Learning of Halfspaces with Adversarial NoiseJie ShenICML 2021 · 被引用 15 次
- Sample-Optimal PAC Learning of Halfspaces with Malicious NoiseJie ShenICML 2021 · 被引用 14 次
- List-Decodable Sparse Mean EstimationShiwei Zeng, Jie ShenNeurIPS 2022 · 被引用 13 次
- Efficient PAC Learning from the Crowd with Pairwise ComparisonsShiwei Zeng, Jie ShenICML 2022 · 被引用 8 次
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