Sequential Conditional Transport on Probabilistic Graphs for Interpretable Counterfactual Fairness

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[Submitted on 6 Aug 2024]

View a PDF of the paper titled Sequential Conditional Transport on Probabilistic Graphs for Interpretable Counterfactual Fairness, by Agathe Fernandes Machado and 2 other authors

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Abstract:In this paper, we link two existing approaches to derive counterfactuals: adaptations based on a causal graph, as suggested in Plečko and Meinshausen (2020) and optimal transport, as in De Lara et al. (2024). We extend “Knothe’s rearrangement” Bonnotte (2013) and “triangular transport” Zech and Marzouk (2022a) to probabilistic graphical models, and use this counterfactual approach, referred to as sequential transport, to discuss individual fairness. After establishing the theoretical foundations of the proposed method, we demonstrate its application through numerical experiments on both synthetic and real datasets.

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From: Agathe Fernandes Machado [view email]
[v1]
Tue, 6 Aug 2024 20:02:57 UTC (1,947 KB)



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