Outlier-Robust Sparse Estimation via Non-Convex Optimization
Yu Cheng, Ilias Diakonikolas, Rong Ge, Shivam Gupta, Daniel Kane, Mahdi Soltanolkotabi
摘要
We explore the connection between outlier-robust high-dimensional statistics and non-convex optimization in the presence of sparsity constraints, with a focus on the fundamental tasks of robust sparse mean estimation and robust sparse PCA. We develop novel and simple optimization formulations for these problems such that any approximate stationary point of the associated optimization problem yields a near-optimal solution for the underlying robust estimation task. As a corollary, we obtain that any first-order method that efficiently converges to stationarity yields an efficient algorithm for these tasks. The obtained algorithms are simple, practical, and succeed under broader distributional assumptions compared to prior work.
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引用它的顶会 Paper10
- Is Out-of-Distribution Detection Learnable?Zhen Fang, Yixuan Li, Jie Lu, Jiahua Dong 等NeurIPS 2022 · 被引用 188 次
- Streaming Algorithms for High-Dimensional Robust StatisticsIlias Diakonikolas, Daniel M. Kane, Ankit Pensia, Thanasis PittasICML 2022 · 被引用 25 次
- Outlier-Robust Sparse Mean Estimation for Heavy-Tailed DistributionsIlias Diakonikolas, Daniel Kane, Jasper C. H. Lee, Ankit PensiaNeurIPS 2022 · 被引用 15 次
- List-Decodable Sparse Mean EstimationShiwei Zeng, Jie ShenNeurIPS 2022 · 被引用 13 次
- Nearly-Linear Time and Streaming Algorithms for Outlier-Robust PCAIlias Diakonikolas, Daniel Kane, Ankit Pensia, Thanasis PittasICML 2023 · 被引用 11 次
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