Multi-model Ensemble Conformal Prediction in Dynamic Environments
Erfan Hajihashemi, Yanning Shen
Abstract
Conformal prediction is an uncertainty quantification method that constructs a prediction set for a previously unseen datum, ensuring the true label is included with a predetermined coverage probability. Adaptive conformal prediction has been developed to address data distribution shifts in dynamic environments. However, the efficiency of prediction sets varies depending on the learning model used. Employing a single fixed model may not consistently offer the best performance in dynamic environments with unknown data distribution shifts. To address this issue, we introduce a novel adaptive conformal prediction framework, where the model used for creating prediction sets is selected on the fly from multiple candidate models. The proposed algorithm is proven to achieve strongly adaptive regret over all intervals while maintaining valid coverage. Experiments on real and synthetic datasets corroborate that the proposed approach consistently yields more efficient prediction sets while maintaining valid coverage, outperforming alternative methods.
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Cited by top-tier papers4
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- Distribution-informed Online Conformal PredictionDongjian Hu, Junxi Wu, Shu-Tao Xia, Changliang ZouICLR 2026 · 2 citations
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- Adaptive Conformal Inference Under Distribution ShiftIsaac Gibbs, Emmanuel J. CandèsNeurIPS 2021 · 665 citations
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- Class-Conditional Conformal Prediction with Many ClassesTiffany Ding, Anastasios Angelopoulos, Stephen Bates, Michael I. Jordan et al.NeurIPS 2023 · 160 citations
- Improved Online Conformal Prediction via Strongly Adaptive Online LearningAadyot Bhatnagar, Huan Wang, Caiming Xiong, Yu BaiICML 2023 · 87 citations
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