Tight Margin-Based Generalization Bounds for Voting Classifiers over Finite Hypothesis Sets
Kasper Green Larsen, Natascha Schalburg
2026Year
2Citations
Abstract
We prove the first margin-based generalization bound for voting classifiers, that is asymptotically tight in the tradeoff between the size of the hypothesis set, the margin, the fraction of training points with the given margin, the number of training samples and the failure probability.
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- Optimal Weak to Strong LearningKasper Green Larsen, Martin RitzertNeurIPS 2022 · 16 citations
- Margins are Insufficient for Explaining Gradient BoostingAllan Grønlund, Lior Kamma, Kasper Green LarsenNeurIPS 2020 · 13 citations
- AdaBoost is not an Optimal Weak to Strong LearnerMikael Møller Høgsgaard, Kasper Green Larsen, Martin RitzertICML 2023 · 8 citations
- The Many Faces of Optimal Weak-to-Strong LearningMikael Møller Høgsgaard, Kasper Green Larsen, Markus Engelund MathiasenNeurIPS 2024 · 4 citations
- Tight Generalization Bounds for Large-Margin HalfspacesKasper Green Larsen, Natascha SchalburgNeurIPS 2025 · 1 citation
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