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Venn-Abers predictors

This paper continues study, both theoretical and empirical, of the method of Venn prediction, concentrating on binary prediction problems. Venn predictors produce probability-type predictions for the labels of test objects which are guaranteed to be well calibrated under the standard assumption that the observations are generated independently from the same distribution. We give a simple formalization and proof of this property. We also introduce Venn-Abers predictors, a new class of Venn predictors based on the idea of isotonic regression, and report promising empirical results both for Venn-Abers predictors and for their more computationally efficient simplified version.

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Co-authorshipWorks onAuthorshipWorks onAuthorshipTopic signalWVenn-Abers predictorspreprint / 2014AVladimir VovkResearcherAIvan PetejResearcherTMachine Learning49008 works
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Venn-Abers predictors

preprint / 2014

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