Statistically Efficient Off-Policy Policy Gradients
Nathan Kallus, Masatoshi Uehara
摘要
Policy gradient methods in reinforcement learning update policy parameters by taking steps in the direction of an estimated gradient of policy value. In this paper, we consider the statistically efficient estimation of policy gradients from off-policy data, where the estimation is particularly non-trivial. We derive the asymptotic lower bound on the feasible mean-squared error in both Markov and non-Markov decision processes and show that existing estimators fail to achieve it in general settings. We propose a meta-algorithm that achieves the lower bound without any parametric assumptions and exhibits a unique 3-way double robustness property. We discuss how to estimate nuisances that the algorithm relies on. Finally, we establish guarantees on the rate at which we approach a stationary point when we take steps in the direction of our new estimated policy gradient.
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引用它的顶会 Paper14
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- Doubly Robust Distributionally Robust Off-Policy Evaluation and LearningNathan Kallus, Xiaojie Mao, Kaiwen Wang, Zhengyuan ZhouICML 2022 · 被引用 39 次
- Doubly Robust Off-Policy Actor-Critic: Convergence and OptimalityTengyu Xu, Zhuoran Yang, Zhaoran Wang, Yingbin LiangICML 2021 · 被引用 31 次
- Doubly Robust Off-Policy Value and Gradient Estimation for Deterministic PoliciesNathan Kallus, Masatoshi UeharaNeurIPS 2020 · 被引用 16 次
- Doubly Robust Alignment for Large Language ModelsErhan Xu, Kai Ye, Hongyi Zhou, Luhan Zhu 等NeurIPS 2025 · 被引用 14 次
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