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PAC-Bayes with Minimax for Confidence-Rated Transduction (1501.03838v1)

Published 15 Jan 2015 in cs.LG and stat.ML

Abstract: We consider using an ensemble of binary classifiers for transductive prediction, when unlabeled test data are known in advance. We derive minimax optimal rules for confidence-rated prediction in this setting. By using PAC-Bayes analysis on these rules, we obtain data-dependent performance guarantees without distributional assumptions on the data. Our analysis techniques are readily extended to a setting in which the predictor is allowed to abstain.

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