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Beyond Shapley: Efficient Computation of Asymmetric Shapley Values
arXiv:2606.25103v1 Announce Type: new Abstract: We address the problem of explainability in machine learning models through feature attribution methods. In particular, we consider a variant of Shapley values known as Asymmetric Shapley Values (ASV), which enables the incorporation of causal knowledge into model-agnostic explanations through the use of a causal graph. We show that in certain contexts in which the computation of SHAP is $\#P$-hard, the exact computation of ASV can be done in polyn...
arXiv cs.AI
·Ezequiel Companeetz, Santiago Cifuentes, Sergio Abriola
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