Improved Margin Generalization Bounds for Voting Classifiers
February 23, 2025 ยท Declared Dead ยท ๐ Annual Conference Computational Learning Theory
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Authors
Mikael Mรธller Hรธgsgaard, Kasper Green Larsen
arXiv ID
2502.16462
Category
cs.LG: Machine Learning
Cross-listed
cs.DS,
math.ST,
stat.ML
Citations
2
Venue
Annual Conference Computational Learning Theory
Last Checked
5 months ago
Abstract
In this paper we establish a new margin-based generalization bound for voting classifiers, refining existing results and yielding tighter generalization guarantees for widely used boosting algorithms such as AdaBoost (Freund and Schapire, 1997). Furthermore, the new margin-based generalization bound enables the derivation of an optimal weak-to-strong learner: a Majority-of-3 large-margin classifiers with an expected error matching the theoretical lower bound. This result provides a more natural alternative to the Majority-of-5 algorithm by (Hรธgsgaard et al., 2024), and matches the Majority-of-3 result by (Aden-Ali et al., 2024) for the realizable prediction model.
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