Counterfactual Metarules for Local and Global Recourse
J.P. Morgan Chase · PARIS-SACLAY, LaMME · JP Morgan · King's College London · School of Computer Science, Carnegie Mellon University
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摘要
We introduce **T-CREx**, a novel model-agnostic method for local and global counterfactual explanation (CE), which summarises recourse options for both individuals and groups in the form of generalised rules. It leverages tree-based surrogate models to learn the counterfactual rules, alongside *metarules* denoting their regimes of optimality, providing both a global analysis of model behaviour and diverse recourse options for users. Experiments indicate that **T-CREx** achieves superior aggregate performance over existing rule-based baselines on a range of CE desiderata, while being orders of magnitude faster to run.