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  • title: Information-Theoretic State Space Model for Multi-View Reinforcement Learning
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            Information-Theoretic State Space Model for Multi-View Reinforcement Learning
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            Information-Theoretic State Space Model for Multi-View Reinforcement Learning

            Jul 25, 2023

            Speakers

            HH

            HyeongJoo Hwang

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            SS

            Seokin Seo

            Speaker · 0 followers

            YJ

            Youngsoo Jang

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            About

            Multi-View Reinforcement Learning (MVRL) seeks to find an optimal control for an agent given multi-view observations from various sources. Despite recent advances in multi-view learning that aim to extract the latent representation from multi-view data, it is not straightforward to apply them to control tasks, especially when the observations are temporally dependent on one another. The problem can be even more challenging if the observations are intermittently missing for a subset of views. In…

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            ICML 2023

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