Double Auctions with Two-sided Bandit Feedback
Soumya Basu, Abishek Sankararaman
摘要
Double Auction enables decentralized transfer of goods between multiple buyers and sellers, thus underpinning functioning of many online marketplaces. Buyers and sellers compete in these markets through bidding, but do not often know their own valuation a-priori. As the allocation and pricing happens through bids, the profitability of participants, hence sustainability of such markets, depends crucially on learning respective valuations through repeated interactions. We initiate the study of Double Auction markets under bandit feedback on both buyers' and sellers' side. We show with confidence bound based bidding, and `Average Pricing' there is an efficient price discovery among the participants. In particular, the regret on combined valuation of the buyers and the sellers -- a.k.a. the social regret -- is in rounds, where is the minimum price gap. Moreover, the buyers and sellers exchanging goods attain regret, individually. The buyers and sellers who do not benefit from exchange in turn only experience regret individually in rounds. We augment our upper bound by showing that individual regret, and social regret is unattainable in certain Double Auction markets. Our paper is the first to provide decentralized learning algorithms in a two-sided market where both sides have uncertain preference that need to be learned.
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它引用的顶会 Paper4
- Learning Equilibria in Matching Markets from Bandit FeedbackMeena Jagadeesan, Alexander Wei, Yixin Wang, Michael I. Jordan 等NeurIPS 2021 · 被引用 52 次
- Beyond log2(T) regret for decentralized bandits in matching marketsSoumya Basu, Karthik Abinav Sankararaman, Abishek SankararamanICML 2021 · 被引用 45 次
- Learning in Multi-Stage Decentralized Matching MarketsXiaowu Dai, Michael I. JordanNeurIPS 2021 · 被引用 21 次
- Real-Time Optimisation for Online Learning in AuctionsLorenzo Croissant, Marc Abeille, Clément CalauzènesICML 2020 · 被引用 4 次
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