Cooperative Multi-Agent Bandits with Heavy Tails
Abhimanyu Dubey, Alex 'Sandy' Pentland
摘要
We study the heavy-tailed stochastic bandit problem in the cooperative multi-agent setting, where a group of agents interact with a common bandit problem, while communicating on a network with delays. Existing algorithms for the stochastic bandit in this setting utilize confidence intervals arising from an averaging-based communication protocol known as running consensus, that does not lend itself to robust estimation for heavy-tailed settings. We propose MP-UCB, a decentralized multi-agent algorithm for the cooperative stochastic bandit that incorporates robust estimation with a message-passing protocol. We prove optimal regret bounds for MP-UCB for several problem settings, and also demonstrate its superiority to existing methods. Furthermore, we establish the first lower bounds for the cooperative bandit problem, in addition to providing efficient algorithms for robust bandit estimation of location.
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引用它的顶会 Paper14
- Differentially-Private Federated Linear BanditsAbhimanyu Dubey, Alex 'Sandy' PentlandNeurIPS 2020 · 被引用 138 次
- Beyond log2(T) regret for decentralized bandits in matching marketsSoumya Basu, Karthik Abinav Sankararaman, Abishek SankararamanICML 2021 · 被引用 45 次
- Cooperative Stochastic Bandits with Asynchronous Agents and Constrained FeedbackLin Yang, Yu-Zhen Janice Chen, Stephen Pasteris, Mohammad H. Hajiesmaili 等NeurIPS 2021 · 被引用 36 次
- Metadata-based Multi-Task Bandits with Bayesian Hierarchical ModelsRunzhe Wan, Lin Ge, Rui SongNeurIPS 2021 · 被引用 33 次
- One More Step Towards Reality: Cooperative Bandits with Imperfect CommunicationUdari Madhushani, Abhimanyu Dubey, Naomi Ehrich Leonard, Alex PentlandNeurIPS 2021 · 被引用 29 次
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