Fast Excess Risk Rates via Offset Rademacher Complexity
Chenguang Duan, Yuling Jiao, Lican Kang, Xiliang Lu, Jerry Zhijian Yang
2023年份
6被引次数
2顶会引用
摘要
Based on the offset Rademacher complexity, this work outlines a systematical framework for deriving sharp excess risk bounds in statistical learning without Bernstein condition. In addition to recovering fast rates in a unified way for some parametric and nonparametric supervised learning models with minimum identifiability assumptions, we also obtain new and improved results for LAD (sparse) linear regression and deep logistic regression with deep ReLU neural networks, respectively.
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引用它的顶会 Paper2
- Refined generalization analysis of the Deep Ritz Method and Physics-Informed Neural NetworksXianliang Xu, Ye Li, Zhongyi HuangICML 2025
- On Contraction of Sequential and Offset Rademacher ComplexitiesAdam Block, Alexander Rakhlin, Mark SellkeICML 2026
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