Stochastic bandits with arm-dependent delays
Anne Gael Manegueu, Claire Vernade, Alexandra Carpentier, Michal Valko
摘要
Significant work has been recently dedicated to the stochastic delayed bandit setting because of its relevance in applications. The applicability of existing algorithms is however restricted by the fact that strong assumptions are often made on the delay distributions, such as full observability, restrictive shape constraints, or uniformity over arms. In this work, we weaken them significantly and only assume that there is a bound on the tail of the delay. In particular, we cover the important case where the delay distributions vary across arms, and the case where the delays are heavy-tailed. Addressing these difficulties, we propose a simple but efficient UCB-based algorithm called the PatientBandits. We provide both problems-dependent and problems-independent bounds on the regret as well as performance lower bounds.
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引用它的顶会 Paper21
- Stochastic Multi-Armed Bandits with Unrestricted Delay DistributionsTal Lancewicki, Shahar Segal, Tomer Koren, Yishay MansourICML 2021 · 被引用 45 次
- Learning Adversarial Markov Decision Processes with Delayed FeedbackTal Lancewicki, Aviv Rosenberg, Yishay MansourAAAI 2022 · 被引用 40 次
- Near-Optimal Regret for Adversarial MDP with Delayed Bandit FeedbackTiancheng Jin, Tal Lancewicki, Haipeng Luo, Yishay Mansour 等NeurIPS 2022 · 被引用 29 次
- Efficient RL with Impaired Observability: Learning to Act with Delayed and Missing State ObservationsMinshuo Chen, Yu Bai, H. Vincent Poor, Mengdi WangNeurIPS 2023 · 被引用 19 次
- Bandit Learning with Delayed Impact of ActionsWei Tang, Chien-Ju Ho, Yang LiuNeurIPS 2021 · 被引用 14 次
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