Stability and Sharper Risk Bounds with Convergence Rate Õ(1/n2)
Bowei Zhu, Shaojie Li, Mingyang Yi, Yong Liu
2025Year
2Citations
Abstract
Prior work (Klochkov Zhivotovskiy, 2021) establishes at most excess risk bounds via algorithmic stability for strongly-convex learners with high probability. We show that under the similar common assumptions -- - Polyak-Lojasiewicz condition, smoothness, and Lipschitz continous for losses -- - rates of are at most achievable. To our knowledge, our analysis also provides the tightest high-probability bounds for gradient-based generalization gaps in nonconvex settings.
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