Bandit Learning in Many-to-One Matching Markets

被引:4
|
作者
Wang, Zilong [1 ]
Guo, Liya [2 ]
Yin, Junming [3 ]
Li, Shuai [1 ]
机构
[1] Shanghai Jiao Tong Univ, Shanghai, Peoples R China
[2] Xiamen Univ, Xiamen, Peoples R China
[3] Carnegie Mellon Univ, Tepper Sch Business, Pittsburgh, PA 15213 USA
来源
PROCEEDINGS OF THE 31ST ACM INTERNATIONAL CONFERENCE ON INFORMATION AND KNOWLEDGE MANAGEMENT, CIKM 2022 | 2022年
关键词
matching markets; multi-armed bandit; many-to-one setting; MULTIARMED BANDIT; COLLEGE ADMISSIONS; STABILITY;
D O I
10.1145/3511808.3557248
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The problem of two-sided matching markets is well-studied in social science and economics. Some recent works study how to match while learning the unknown preferences of agents in one-to-one matching markets. However, in many cases like the online recruitment platform for short-term workers, a company can select more than one agent while an agent can only select one company at a time. These short-term workers try many times in different companies to find the most suitable jobs for them. Thuswe consider a more general bandit learning problem in many-to-one matching markets where each arm has a fixed capacity and agents make choices with multiple rounds of iterations. We develop algorithms in both centralized and decentralized settings and prove regret bounds of order O(log T) and O(log(2)T) respectively. Extensive experiments show the convergence and effectiveness of our algorithms.
引用
收藏
页码:2088 / 2097
页数:10
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