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  • title: An Information-Theoretic Analysis of Nonstationary Bandit Learning
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            An Information-Theoretic Analysis of Nonstationary Bandit Learning
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            An Information-Theoretic Analysis of Nonstationary Bandit Learning

            Jul 24, 2023

            Speakers

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            Seungki Min

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            DR

            Daniel Russo

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            About

            In nonstationary bandit learning problems, the decision-maker must continually gather information and adapt their action selection as the latent state of the environment evolves. In each time period, some latent optimal action maximizes expected reward under the environment state. We view the optimal action sequence as a stochastic process, and take an information-theoretic approach to analyze attainable performance. We bound limiting per-period regret in terms of the entropy rate of the optimal…

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            ICML 2023

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