A Simple Unified Framework for High Dimensional Bandit Problems
Wenjie Li, Adarsh Barik, Jean Honorio
摘要
Stochastic high dimensional bandit problems with low dimensional structures are useful in different applications such as online advertising and drug discovery. In this work, we propose a simple unified algorithm for such problems and present a general analysis framework for the regret upper bound of our algorithm. We show that under some mild unified assumptions, our algorithm can be applied to different high-dimensional bandit problems. Our framework utilizes the low dimensional structure to guide the parameter estimation in the problem, therefore our algorithm achieves the comparable regret bounds in the LASSO bandit as a sanity check, as well as novel bounds that depend logarithmically on dimensions in the low-rank matrix bandit, the group sparse matrix bandit, and in a new problem: the multi-agent LASSO bandit.
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引用它的顶会 Paper13
- Efficient Frameworks for Generalized Low-Rank Matrix Bandit ProblemsYue Kang, Cho-Jui Hsieh, Thomas Chun Man LeeNeurIPS 2022 · 被引用 24 次
- A Reduction from Linear Contextual Bandit Lower Bounds to Estimation Lower BoundsJiahao He, Jiheng Zhang, Rachel Q. ZhangICML 2022 · 被引用 11 次
- Anytime Model Selection in Linear BanditsParnian Kassraie, Nicolas Emmenegger, Andreas Krause, Aldo PacchianoNeurIPS 2023 · 被引用 8 次
- Single Index Bandits: Generalized Linear Contextual Bandits with Unknown Reward FunctionsYue Kang, Mingshuo Liu, Bongsoo Yi, Jing Lyu 等ICLR 2026 · 被引用 7 次
- Hierarchize Pareto Dominance in Multi-Objective Stochastic Linear BanditsJi Cheng, Bo Xue, Jiaxiang Yi, Qingfu ZhangAAAI 2024 · 被引用 5 次
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