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February 26, 20242 citationsOpen Access

Expressive Whole-Body Control for Humanoid Robots

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XCXuxin ChengYJYandong JiJCJunming Chen

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Abstract

Can we enable humanoid robots to generate rich, diverse, and expressive motions in the real world? We propose to learn a whole-body control policy on a human-sized robot to mimic human motions as realistic as possible. To train such a policy, we leverage the large-scale human motion capture data from the graphics community in a Reinforcement Learning framework. However, directly performing imitation learning with the motion capture dataset would not work on the real humanoid robot, given the large gap in degrees of freedom and physical capabilities. Our method Expressive Whole-Body Control (Exbody) tackles this problem by encouraging the upper humanoid body to imitate a reference motion, while relaxing the imitation constraint on its two legs and only requiring them to follow a given velocity robustly. With training in simulation and Sim2Real transfer, our policy can control a humanoid robot to walk in different styles, shake hands with humans, and even dance with a human in the real world. We conduct extensive studies and comparisons on diverse motions in both simulation and the real world to show the effectiveness of our approach.

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Cite This Study

Cheng et al. (2024) studied this question.

synapsesocial.com/papers/68e778e0b6db6435876ede58https://doi.org/10.48550/arxiv.2402.16796
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Learning Whole-Body Humanoid Locomotion via Motion Generation and Motion Tracking2026
  2. 2KungfuBot: Physics-Based Humanoid Whole-Body Control for Learning Highly-Dynamic Skills2025
  3. 3Learning Human-to-Humanoid Real-Time Whole-Body Teleoperation2024 · 3 citations
  4. 4SMAP: Self-supervised Motion Adaptation for Physically Plausible Humanoid Whole-body Control2025
  5. 5Learning Multi-Modal Whole-Body Control for Real-World Humanoid Robots2024