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General Quantification of Covariate and Concept Shifts

First seen · 9/11/2026, 01:57 AMLatest activity · 9/11/2026, 01:57 AM

Addressing the breakdown of classical learning bounds when source and target data supports mismatch, this paper introduces $\gamma^*$-concept shifts grounded in entropic optimal transport. The authors derive a unified generalization bound that accommodates broad loss functions, continuous or discrete label spaces, and stochastic labeling. To bridge theory and practice, they design finite-sample estimators alongside DataShifts, an algorithm capable of numerically quantifying distribution shifts and evaluating target error bounds directly from empirical datasets.

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Reporting Timeline

  1. AggregatorarXiv9/11, 01:57 AMnot independentRepresentative
    General Quantification of Covariate and Concept Shifts