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Post-Hoc Robustness for Model-Based Reinforcement Learning

Siemen Herremans, Ali Anwar, Siegfried Mercelis
Jun 3, 2026 at 04:00
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arXiv:2606.03521v1 Announce Type: cross Abstract: To improve the real-world applicability of reinforcement learning (RL), the field of adversarially robust RL studies how to train agents under adversarial environment perturbations. In this setting, a protagonist agent optimizes a policy under environmental perturbations from an adversary,...

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