Efficient Contextual Bandits with Continuous Actions
Maryam Majzoubi, Chicheng Zhang, Rajan Chari, Akshay Krishnamurthy, John Langford, Aleksandrs Slivkins
2020Year
39Citations
13Top-tier citations
Abstract
We create a computationally tractable algorithm for contextual bandits with continuous actions having unknown structure. Our reduction-style algorithm composes with most supervised learning representations. We prove that it works in a general sense and verify the new functionality with large-scale experiments.
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Install the CLIlune papers fulltext cfe4cb84-ad1b-4db6-a8a7-d550d93686fcCited by top-tier papers13
- Multi-Agent Reinforcement Learning for Active Voltage Control on Power Distribution NetworksJianhong Wang, Wangkun Xu, Yunjie Gu, Wenbin Song et al.NeurIPS 2021 · 216 citations
- Contextual Bandits with Large Action Spaces: Made PracticalYinglun Zhu, Dylan J. Foster, John Langford, Paul MineiroICML 2022 · 34 citations
- Deep Hierarchy in BanditsJoey Hong, Branislav Kveton, Sumeet Katariya, Manzil Zaheer et al.ICML 2022 · 21 citations
- Contextual Bandits with Smooth Regret: Efficient Learning in Continuous Action SpacesYinglun Zhu, Paul MineiroICML 2022 · 19 citations
- Deep Jump Learning for Off-Policy Evaluation in Continuous Treatment SettingsHengrui Cai, Chengchun Shi, Rui Song, Wenbin LuNeurIPS 2021 · 18 citations
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