RL
Reinforcement Learning in Robotics
This cluster of papers encompasses a wide range of advancements in reinforcement learning algorithms and their applications, including deep learning, neural networks, robotics, autonomous control, policy gradient methods, multi-agent systems, model-based learning, curiosity-driven exploration, and simulation to real-world transfer.
58,055
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- Sergey Levine (462)
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- Reinforcement Learning in Robotics (105,732)
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