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Annals of Statistics | 2004

Generalization bounds for averaged classifiers

Yoav Freund; Yishay Mansour; Robert E. Schapire

We study a simple learning algorithm for binary classification. Instead of predicting with the best hypothesis in the hypothesis class, that is, the hypothesis that minimizes the training error, our algorithm predicts with a weighted average of all hypotheses, weighted exponentially with respect to their training error. We show that the prediction of this algorithm is much more stable than the prediction of an algorithm that predicts with the best hypothesis. By allowing the algorithm to abstain from predicting on some examples, we show that the predictions it makes when it does not abstain are very reliable. Finally, we show that the probability that the algorithm abstains is comparable to the generalization error of the best hypothesis in the class.


Archive | 2012

Boosting in Continuous Time

Robert E. Schapire; Yoav Freund


Archive | 2012

Optimally Efficient Boosting

Robert E. Schapire; Yoav Freund


Archive | 2012

Using Confidence-Rated Weak Predictions

Robert E. Schapire; Yoav Freund


Archive | 2012

Attaining the Best Possible Accuracy

Robert E. Schapire; Yoav Freund


Archive | 2012

Subject and Author Index

Robert E. Schapire; Yoav Freund


Archive | 2012

Appendix: Some Notation, Definitions, and Mathematical Background

Robert E. Schapire; Yoav Freund


Archive | 2012

Index of Algorithms, Figures, and Tables

Robert E. Schapire; Yoav Freund


Archive | 2012

Game Theory, Online Learning, and Boosting

Robert E. Schapire; Yoav Freund


Archive | 2004

A Discussion of: "Process Consistency for AdaBoost" by Wenxin Jiang "On the Bayes-risk consistency of regularized boosting methods" by G´ abor Lugosi and Nicolas Vayatis "Statistical Behavior and Consistency of Classification Methods based on Convex Risk Minimization" by Tong Zhang

Yoav Freund; Robert E. Schapire

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