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Papers/Aggregation in conformal e-classification
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Aggregation in conformal e-classification

May 8, 2026

arXiv
Abstract

Aggregating conformal predictors is a standard way of balancing their predictive and computational efficiency while retaining their validity, at least approximately. An important advantage of conformal e-predictors is that they are easier to aggregate without sacrificing their validity. This paper studies experimentally cross-conformal e-prediction, which is an existing method of aggregating conformal e-predictors, and its modifications that are conceptually simpler and more flexible.

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Authors
Vladimir Vovk
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Cross-links
arXiv:2605.07963