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Mathieu Besanccon

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Preprint Jul 2026

First-Order Methods for Distributionally Robust Constrained Optimization

This paper proposes a tractable stochastic approach based on an entropic regularization of the distributionally robust value function, which makes it possible to compute stochastic gradient estimators, and the combination of these estimators with a stochastic Frank-Wolfe algorithm, allowing us to optimize the regularized robust objective while naturally handling constraints.

Hubert Villuendas, Mathieu Besanccon, Jérôme Malick · 0 citations