{"id":330755,"date":"2016-12-02T10:26:12","date_gmt":"2016-12-02T18:26:12","guid":{"rendered":"https:\/\/www.microsoft.com\/en-us\/research\/?post_type=msr-research-item&#038;p=330755"},"modified":"2018-10-16T22:06:29","modified_gmt":"2018-10-17T05:06:29","slug":"bayesian-incentive-compatible-bandit-exploration","status":"publish","type":"msr-research-item","link":"https:\/\/www.microsoft.com\/en-us\/research\/publication\/bayesian-incentive-compatible-bandit-exploration\/","title":{"rendered":"Bayesian Incentive-Compatible Bandit Exploration"},"content":{"rendered":"<p>Individual decision-makers consume information revealed by the previous decision makers, and produce information that may help in future decisions. This phenomenon is common in a wide range of scenarios in the Internet economy, as well as in other domains such as medical decisions. Each decisionmaker would individually prefer to exploit: select an action with the highest expected reward given her current information. At the same time, each decision-maker would prefer previous decision-makes to explore, producing information about the rewards of various actions. A social planner, by means of carefully designed information disclosure, can incentivize the agents to balance the exploration and exploitation so as to maximize social welfare. We formulate this problem as a multi-armed bandit problem (and various generalizations thereof) under incentive-compatibility constraints induced by the agents\u2019 Bayesian priors. We design an incentivecompatible bandit algorithm for the social planner whose regret is asymptotically optimal among all bandit algorithms (incentive-compatible or not). Further, we provide a black-box reduction from an arbitrary multi-arm bandit algorithm to an incentive-compatible one, with only a constant multiplicative increase in regret. This reduction works for very general bandit setting that incorporate contexts and arbitrary auxiliary feedback.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Individual decision-makers consume information revealed by the previous decision makers, and produce information that may help in future decisions. This phenomenon is common in a wide range of scenarios in the Internet economy, as well as in other domains such as medical decisions. Each decisionmaker would individually prefer to exploit: select an action with the [&hellip;]<\/p>\n","protected":false},"featured_media":0,"template":"","meta":{"msr-url-field":"","msr-podcast-episode":"","msrModifiedDate":"","msrModifiedDateEnabled":false,"ep_exclude_from_search":false,"_classifai_error":"","msr-author-ordering":null,"msr_publishername":"ACM","msr_publisher_other":"","msr_booktitle":"","msr_chapter":"","msr_edition":"EC '15 Proceedings of the Sixteenth ACM Conference on Economics and Computation","msr_editors":"","msr_how_published":"","msr_isbn":"","msr_issue":"","msr_journal":"","msr_number":"","msr_organization":"","msr_pages_string":"565-582","msr_page_range_start":"565","msr_page_range_end":"582","msr_series":"","msr_volume":"","msr_copyright":"","msr_conference_name":"EC '15 Proceedings of the Sixteenth ACM Conference on Economics and 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