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Kento Uemura

3 accepted papers

2025

DCILP: A Distributed Approach for Large-Scale Causal Structure Learning

AAAI 2025technical

Causal learning tackles the computationally demanding task of estimating causal graphs. This paper introduces a new divide-and-conquer approach for causal graph learning, called DCILP. In the divide phase, the Markov blanket MB(Xi) of each variable Xi is identified, and causal learning subproblems a…

2021

Ordered Counterfactual Explanation by Mixed-Integer Linear Optimization

AAAI 2021technical

Post-hoc explanation methods for machine learning models have been widely used to support decision-making. One of the popular methods is Counterfactual Explanation (CE), also known as Actionable Recourse, which provides a user with a perturbation vector of features that alters the prediction result.…