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arXiv (Cornell University)
Reinforcement Learning, Bit by Bit
March 2021 • Xiuyuan Lu, Benjamin Van Roy, Vikranth Dwaracherla, Morteza Ibrahimi, Ian Osband, Zheng Wen
Reinforcement learning agents have demonstrated remarkable achievements in simulated environments. Data efficiency poses an impediment to carrying this success over to real environments. The design of data-efficient agents calls for a deeper understanding of information acquisition and representation. We discuss concepts and regret analysis that together offer principled guidance. This line of thinking sheds light on questions of what information to seek, how to seek that information, and what information to retai…
Reinforcement Learning
Computer Science
Human–Computer Interaction
Artificial Intelligence
Data Science
Machine Learning
Computer Security
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