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A proof of convergence of inverse reinforcement learning for multi-objective optimization
Published 10 May 2023 in cs.LG, cs.AI, and stat.ML | (2305.06137v3)
Abstract: We show the convergence of Wasserstein inverse reinforcement learning for multi-objective optimizations with the projective subgradient method by formulating an inverse problem of the multi-objective optimization problem. In addition, we prove convergence of inverse reinforcement learning (maximum entropy inverse reinforcement learning, guided cost learning) with gradient descent and the projective subgradient method.
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