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Measuring Classification Decision Certainty and Doubt

Published 25 Mar 2023 in stat.ML, cs.AI, cs.LG, math.DG, and math.PR | (2303.14568v2)

Abstract: Quantitative characterizations and estimations of uncertainty are of fundamental importance in optimization and decision-making processes. Herein, we propose intuitive scores, which we call certainty and doubt, that can be used in both a Bayesian and frequentist framework to assess and compare the quality and uncertainty of predictions in (multi-)classification decision machine learning problems.

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