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Jia-Xin Wu

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#machine learning Preprint Sep 2026

Robust Adversarial Reinforcement Learning with Risk Sensitivity and Critic Consistency Regularization

This work proposes a unified framework, RACER (Risk-sensitive robust Adversarial critic ConsistEncy-regularized Reinforcement learning), that revisits adversarial RL from a risk-sensitive perspective and introduces a state-dependent adversarial objective that adaptively regulates perturbation strength.

Jia-Xin Wu, Tian-Tian Zhang, Yu-Xing Wang et al. · 0 citations

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