Adaptive Estimator Selection for Off-Policy Evaluation
Yi Su, Pavithra Srinath, Akshay Krishnamurthy
2020年份
55被引次数
26顶会引用
摘要
We develop a generic data-driven method for estimator selection in off-policy policy evaluation settings. We establish a strong performance guarantee for the method, showing that it is competitive with the oracle estimator, up to a constant factor. Via in-depth case studies in contextual bandits and reinforcement learning, we demonstrate the generality and applicability of the method. We also perform comprehensive experiments, demonstrating the empirical efficacy of our approach and comparing with related approaches. In both case studies, our method compares favorably with existing methods.
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引用它的顶会 Paper26
- Off-Policy Evaluation for Large Action Spaces via EmbeddingsYuta Saito, Thorsten JoachimsICML 2022 · 被引用 62 次
- Optimal Off-Policy Evaluation from Multiple Logging PoliciesNathan Kallus, Yuta Saito, Masatoshi UeharaICML 2021 · 被引用 44 次
- Deeply-Debiased Off-Policy Interval EstimationChengchun Shi, Runzhe Wan, Victor Chernozhukov, Rui SongICML 2021 · 被引用 43 次
- Off-Policy Evaluation for Large Action Spaces via Conjunct Effect ModelingYuta Saito, Qingyang Ren, Thorsten JoachimsICML 2023 · 被引用 34 次
- Policy-Adaptive Estimator Selection for Off-Policy EvaluationTakuma Udagawa, Haruka Kiyohara, Yusuke Narita, Yuta Saito 等AAAI 2023 · 被引用 29 次
它引用的顶会 Paper1
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