Improving Generalization in Meta Reinforcement Learning using Learned Objectives
Louis Kirsch, Sjoerd van Steenkiste, Jürgen Schmidhuber
摘要
Biological evolution has distilled the experiences of many learners into the general learning algorithms of humans. Our novel meta reinforcement learning algorithm MetaGenRL is inspired by this process. MetaGenRL distills the experiences of many complex agents to meta-learn a low-complexity neural objective function that decides how future individuals will learn. Unlike recent meta-RL algorithms, MetaGenRL can generalize to new environments that are entirely different from those used for meta-training. In some cases, it even outperforms human-engineered RL algorithms. MetaGenRL uses off-policy second-order gradients during meta-training that greatly increase its sample efficiency.
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引用它的顶会 Paper47
- Discovering Reinforcement Learning AlgorithmsJunhyuk Oh, Matteo Hessel, Wojciech M. Czarnecki, Zhongwen Xu 等NeurIPS 2020 · 被引用 154 次
- Meta-Learning with Task-Adaptive Loss Function for Few-Shot LearningSungyong Baik, Janghoon Choi, Heewon Kim, Dohee Cho 等ICCV 2021 · 被引用 146 次
- Discovered Policy OptimisationChris Lu, Jakub Grudzien Kuba, Alistair Letcher, Luke Metz 等NeurIPS 2022 · 被引用 134 次
- Offline Meta-Reinforcement Learning with Advantage WeightingEric Mitchell, Rafael Rafailov, Xue Bin Peng, Sergey Levine 等ICML 2021 · 被引用 122 次
- One Solution is Not All You Need: Few-Shot Extrapolation via Structured MaxEnt RLSaurabh Kumar, Aviral Kumar, Sergey Levine, Chelsea FinnNeurIPS 2020 · 被引用 109 次
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