Paper

Local Additive Feature Attribution: A Mathematical Taxonomy and Reporting Checklist

arXiv:2607.14271v1 Announce Type: cross Abstract: Feature-attribution methods are central to explainable artificial intelligence. Their assumptions are expressed in several mathematical languages: cooperative-game values, path integrals, gradient operators, perturbation distributions, and backpropagation rules. This survey proposes a common framework for local additive feature attribution. It organizes Shapley, path-based, gradient/backpropagation, perturbation, and CAM-style methods around five specification choices: value function, reference, path, perturbation distribution, and conservatio…

arXiv cs.AIPublished 2026-07-17Paper link

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