arXiv:2608.05723cs.RO2026-08

用解剖学扭矩与阻尼控制实现上肢外骨骼安全辅助

ATP: Anatomical Torque with Passivity-based Control Framework for Safe Upper-Limb Exoskeleton Assistance

论文配图:ATP: Anatomical Torque with Passivity-based Control Framework for Safe Upper-Limb Exoskeleton Assistance
图 1 · 摘自论文原文
  • 基于强化学习训练统一肌肉控制器,生成解剖学参考力矩
  • 在线力矩优化抑制肌腱尖峰,实现实时运动适应
  • 保证系统能量被动性,适合真实人机交互场景

为复杂非周期性上肢动作提供安全辅助是外骨骼的核心挑战。本文提出解剖学扭矩与基于被动性的控制框架(ATP)。首先,构建可扩展的肌肉骨骼仿真框架,训练统一的强化学习肌肉控制器,在无需复杂生物力学计算的情况下生成解剖学参考力矩。其次,设计在线力矩精修机制,适应多样化动作,抑制肌腱引起的力矩尖峰,并引入学习异常评分以保障安全舒适。第三,通过缆绳驱动柔性外骨骼实现交互力矩控制,不约束运动轨迹,同时采用能量罐机制确保系统被动性,理论保障力矩跟踪与系统稳定性。仿真与实测结果表明,控制器能精确追踪长时间运动序列,具备实时人机交互泛化能力;在能量罐补能后可恢复跟踪。五名受试者参与的肌电研究显示,静态与动态任务中目标肌群激活显著降低,相比重力补偿和开环辅助,动态多关节任务中最大降幅达48%。

原文摘要 · Abstract (English)

Providing assistance across diverse movements is a central objective of exoskeletons, and anatomical knowledge can enable responsive support that generalizes across tasks. However, anatomical assistance has mainly been studied for lower-limb exoskeletons, where periodic, weight-bearing motions impose lower demands on torque precision. Extending such assistance to complex, nonperiodic upper-limb movements remains challenging. This paper proposes Anatomical Torque with Passivity-Based Control (ATP) for safe upper-limb exoskeleton assistance. First, a scalable musculoskeletal simulation framework trains a unified reinforcement-learning muscle controller that generalizes across upper-limb movements and generates anatomical reference torques without complex biomechanical computations. Second, an online torque-refinement scheme adapts the reference to diverse movements, suppresses tendon-induced spikes, and incorporates a learned anomaly score for safe and comfortable assistance. Third, an interaction torque controller delivers assistance through a cable-driven compliant exoskeleton without constraining motion to predefined trajectories, while an energy tank preserves passivity with theoretical guarantees on torque tracking and system passivity. Simulations and real-world experiments show accurate tracking of long-duration motion sequences and generalization to real-time human movements. The controller achieves accurate torque tracking while preserving passivity and resumes tracking after energy-tank replenishment. An EMG study with five participants further shows reduced target-muscle activity during static and dynamic tasks compared with gravity compensation and open-loop assistance, with reductions of up to 48% relative to movement without the exoskeleton in a dynamic multi-joint task.

外骨骼力矩控制主动辅助生物力学

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