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DeepMind Control Suite

2 Jan 2018arXiv:1801.00690archive 2025-07-28

Yuval Tassa, Yotam Doron, Alistair Muldal, Tom Erez, Yazhe Li, Diego de Las Casas, David Budden, Abbas Abdolmaleki, Josh Merel, Andrew Lefrancq, Timothy Lillicrap, Martin Riedmiller

The DeepMind Control Suite is a set of continuous control tasks with a standardised structure and interpretable rewards, intended to serve as performance benchmarks for reinforcement learning agents. The tasks are written in Python and powered by the MuJoCo physics engine, making them easy to use and modify. We include benchmarks for several learning algorithms. The Control Suite is publicly available at https://www.github.com/deepmind/dm_control . A video summary of all tasks is available at http://youtu.be/rAai4QzcYbs .

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deepmind/dm_control officialmentioned in papermentioned on GitHubApache-2.0 report
google-research/pisac mentioned on GitHubtfApache-2.0 report
nicklashansen/tdmpc2 mentioned on GitHubpytorch report
ramanans1/dm_control mentioned on GitHub report
svikramank/dm_control mentioned on GitHub report

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Continuous ControlMuJoCoReinforcement LearningReinforcement Learning (RL)continuous-controlreinforcement-learning

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DeepMind Control Suite

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