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A Confidence Interval for the $\ell_2$ Expected Calibration Error

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arxiv 2408.08998 v4 pith:27ZHZPHP submitted 2024-08-16 stat.ML cs.LG

classification stat.MLcs.LG
keywords calibrationconfidenceintervalsmethodsasymptoticdeveloperrorexpected
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abstract

Recent advances in machine learning have significantly improved prediction accuracy in various applications. However, ensuring the calibration of probabilistic predictions remains a significant challenge. Despite efforts to enhance model calibration, the rigorous statistical evaluation of model calibration remains less explored. In this work, we develop confidence intervals the $\ell_2$ Expected Calibration Error (ECE). We consider top-1-to-$k$ calibration, which includes both the popular notion of confidence calibration as well as full calibration. For a debiased estimator of the ECE, we show asymptotic normality, but with different convergence rates and asymptotic variances for calibrated and miscalibrated models. We develop methods to construct asymptotically valid confidence intervals for the ECE, accounting for this behavior as well as non-negativity. Our theoretical findings are supported through extensive experiments, showing that our methods produce valid confidence intervals with shorter lengths compared to those obtained by resampling-based methods.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Understanding Model Calibration -- A gentle introduction and visual exploration of calibration and the expected calibration error (ECE)

    stat.ME 2025-01 unverdicted novelty 2.0 of 10

    An illustrated introduction to calibration definitions and the expected calibration error, together with a review of its drawbacks and alternative measures.

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