DGPO: Discovering Multiple Strategies with Diversity-Guided Policy Optimization
Wentse Chen,
Shiyu Huang,
Yuan Chiang
et al.
Abstract:Most reinforcement learning algorithms seek a single optimal strategy that solves a given task. However, it can often be valuable to learn a diverse set of solutions, for instance, to make an agent's interaction with users more engaging, or improve the robustness of a policy to an unexpected perturbance. We propose Diversity-Guided Policy Optimization (DGPO), an on-policy algorithm that discovers multiple strategies for solving a given task. Unlike prior work, it achieves this with a shared policy network trai… Show more
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