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  • title: Understanding the Complexity Gains of Single-Task RL with a Curriculum
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            Understanding the Complexity Gains of Single-Task RL with a Curriculum
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            Understanding the Complexity Gains of Single-Task RL with a Curriculum

            Jul 24, 2023

            Speakers

            QL

            Qiyang Li

            Speaker · 0 followers

            YZ

            Yuexiang Zhai

            Speaker · 0 followers

            YM

            Yi Ma

            Speaker · 1 follower

            About

            Reinforcement learning (RL) problems can be challenging without well-shaped rewards. Prior work on provably efficient RL methods generally proposes to address this issue with dedicated exploration strategies. However, another way to tackle this challenge is to reformulate it as a multi-task RL problem, where the task space contains not only the challenging task of interest but also easier tasks that implicitly function as a curriculum. Such a reformulation opens up the possibility of running exi…

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            I2

            ICML 2023

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