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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 341350 of 704 papers

TitleStatusHype
Conformal Counterfactual Inference under Hidden Confounding0
Conditional Shift-Robust Conformal Prediction for Graph Neural Network0
Conformalized Strategy-Proof Auctions0
Recursively Feasible Shrinking-Horizon MPC in Dynamic Environments with Conformal Prediction Guarantees0
The Pitfalls and Promise of Conformal Inference Under Adversarial AttacksCode0
Task-Oriented Mulsemedia Communication using Unified Perceiver and Conformal Prediction in 6G Wireless Systems0
Conformalized Physics-Informed Neural NetworksCode4
Conformal Online Auction DesignCode0
Informativeness of Weighted Conformal PredictionCode0
Conformal Validity Guarantees Exist for Any Data Distribution (and How to Find Them)Code1
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