SwingBot: Learning Whole-Body Brachiation for Humanoid Robots

📅 2026-09-09
📈 Citations: 0
Influential: 0
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🤖 AI Summary
研究提出SwingBot框架,通过模仿关键帧和循环状态估计方法,解决高自由度人形机器人在复杂环境中进行连续臂摆运动的控制问题。
📝 Abstract
Brachiation enables primates to move across overhead supports when ground paths are blocked, suggesting a complementary locomotion mode for robots operating in cluttered or hazardous environments. Bringing this capabil?ity to high-DoF humanoid robots is difficult because the controller must discover a long-horizon release-swing-capture sequence, coordinate alternating contacts with whole-body momentum, and act without reliable measurements of segment?relative displacement or hook-contact state. We present SwingBot, a learning framework for continuous humanoid brachiation with passive wrist hooks. Swing?Bot makes the task trainable by organizing learning around the structure of brachi?ation: biomimetic keyframes make rare release-swing-capture transitions reach?able during early exploration, and recurrent privileged-state estimation provides compact position and contact latents for deployment. Hardware experiments demonstrate continuous bar traversal and robustness to payload, external distur?bances and different bar spacings, showing that this formulation offers a practical route to whole-body robotic brachiation.
Problem

Research questions and friction points this paper is trying to address.

Brachiation
Humanoid Robots
Long-horizon Control
Whole-body Coordination
Innovation

Methods, ideas, or system contributions that make the work stand out.

biomimetic keyframes
recurrent privileged-state estimation
continuous bar traversal
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