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Conformal Prediction

Conformal Prediction is a machine learning framework that provides valid measures of confidence for individual predictions. It offers a principled approach to quantify uncertainty in predictions without assuming any specific distribution for the data. This section features papers that explore various aspects of conformal prediction, including theoretical advancements, algorithmic developments, and applications across different domains.

Papers

Showing 561570 of 704 papers

TitleStatusHype
Achieving Risk Control in Online Learning SettingsCode0
Conformalized Quantile RegressionCode0
Conformalized Survival AnalysisCode0
Conformal Off-policy PredictionCode0
Conformal Online Auction DesignCode0
Conformal online model aggregationCode0
Conformal Performance Range Prediction for Segmentation Output Quality ControlCode0
Conformal Prediction: a Unified Review of Theory and New ChallengesCode0
Conformal Prediction for Causal Effects of Continuous TreatmentsCode0
Conformal Prediction for Class-wise Coverage via Augmented Label Rank CalibrationCode0
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