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📄 ResearchJune 11, 2026

Redesigning Regularization for Effective Policy Smoothing

This paper proposes a novel regularization design to effectively smooth policy functions in reinforcement learning. While regularization that enhances ``global'' Lipschitz continuity was initially considered, it has been limited to ``local'' Lipschitz continuity due to a tradeoff between smoothness ...

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Source

http://arxiv.org/abs/2606.13169v1