Quantile Bandits for Best Arms Identification
Mengyan Zhang, Cheng Soon Ong
摘要
We consider a variant of the best arm identification task in stochastic multi-armed bandits. Motivated by risk-averse decision-making problems in fields like medicine, biology and finance, our goal is to identify a set of arms with the highest -quantile values under a fixed budget. We propose Quantile Successive Accepts and Rejects algorithm (Q-SAR), the first quantile based algorithm for fixed budget multiple arms identification. We prove two-sided asymmetric concentration inequalities for order statistics and quantiles of random variables that have non-decreasing hazard rate, which may be of independent interest. With the proposed concentration inequalities, we upper bound the probability of arm misidentification for the bandit task. We show illustrative experiments for best arm identification.
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引用它的顶会 Paper6
- Gaussian Process Bandits with Aggregated FeedbackMengyan Zhang, Russell Tsuchida, Cheng Soon OngAAAI 2022 · 被引用 6 次
- Distribution-Free Model-Agnostic Regression Calibration via Nonparametric MethodsShang Liu, Zhongze Cai, Xiaocheng LiNeurIPS 2023 · 被引用 5 次
- Optimal Arms Identification with KnapsacksShaoang Li, Lan Zhang, Yingqi Yu, Xiangyang LiICML 2023 · 被引用 5 次
- Neural Design for Genetic Perturbation ExperimentsAldo Pacchiano, Drausin Wulsin, Robert A. Barton, Luis F. VolochICLR 2023 · 被引用 1 次
- Pareto Optimal Risk-Agnostic Distributional Bandits with Heavy-Tail RewardsKyungjae Lee, Dohyeong Kim, Taehyun Cho, Chaeyeon Kim 等NeurIPS 2025
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