Conformal Prediction as Bayesian Quadrature
Jake C. Snell, Thomas L. Griffiths
Abstract
As machine learning-based prediction systems are increasingly used in high-stakes situations, it is important to understand how such predictive models will perform upon deployment. Distributionfree uncertainty quantification techniques such as conformal prediction provide guarantees about the loss black-box models will incur even when the details of the models are hidden. However, such methods are based on frequentist probability, which unduly limits their applicability. We revisit the central aspects of conformal prediction from a Bayesian perspective and thereby illuminate the shortcomings of frequentist guarantees. We propose a practical alternative based on Bayesian quadrature that provides interpretable guarantees and offers a richer representation of the likely range of losses to be observed at test time.
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Cited by top-tier papers2
- Multi-Condition Conformal SelectionQingyang Hao, Wenbo Liao, Bingyi Jing, Hongxin WeiICLR 2026 · 5 citations
- Spectral Conformal Risk Control: Distribution-Free Tail Guarantees via Bayesian QuadratureMohammad Mahdi Kazemi Esfeh, Qi Yan, Yongxing Zhang, Zahra Gholami et al.CVPR 2026
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- Conformal Risk ControlAnastasios Nikolas Angelopoulos, Stephen Bates, Adam Fisch, Lihua Lei et al.ICLR 2024 · 242 citations
- Quantile Risk Control: A Flexible Framework for Bounding the Probability of High-Loss PredictionsJake Snell, Thomas P. Zollo, Zhun Deng, Toniann Pitassi et al.ICLR 2023 · 1 citation
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