Bandit Phase Retrieval
Tor Lattimore, Botao Hao
2021年份
16被引次数
6顶会引用
摘要
We study a bandit version of phase retrieval where the learner chooses actions in the -dimensional unit ball and the expected reward is where is an unknown parameter vector. We prove that the minimax cumulative regret in this problem is , which improves on the best known bounds by a factor of . We also show that the minimax simple regret is and that this is only achievable by an adaptive algorithm. Our analysis shows that an apparently convincing heuristic for guessing lower bounds can be misleading and that uniform bounds on the information ratio for information-directed sampling are not sufficient for optimal regret.
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引用它的顶会 Paper6
- Improved Regret Bounds of Bilinear Bandits using Action Space AnalysisKyoungseok Jang, Kwang-Sung Jun, Se-Young Yun, Wanmo KangICML 2021 · 被引用 10 次
- Multi-task Representation Learning for Pure Exploration in Linear BanditsYihan Du, Longbo Huang, Wen SunICML 2023 · 被引用 6 次
- Efficient Low-Rank Matrix Estimation, Experimental Design, and Arm-Set-Dependent Low-Rank BanditsKyoungseok Jang, Chicheng Zhang, Kwang-Sung JunICML 2024 · 被引用 5 次
- Context-lumpable stochastic banditsChung-Wei Lee, Qinghua Liu, Yasin Abbasi-Yadkori, Chi Jin 等NeurIPS 2023 · 被引用 2 次
- Evolution of Information in Interactive Decision Making: A Case Study for Multi-Armed BanditsYuzhou Gu, Yanjun Han, Jian QianNeurIPS 2025 · 被引用 2 次
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