Aug 2026· Computer Methods in Biomechanics and Biomedical Engineering· pp.
1-18
· 0 citations· 37 references
Medicine
TL;DR
This study proposes a composite control framework for upper-limb rehabilitation exoskeletons integrating fractional-order impedance control, computed-torque compensation, and a momentum-based nonlinear disturbance observer that enhances compliant yielding and tracking robustness under non-ideal dynamics.
Abstract
This study proposes a composite control framework for upper-limb rehabilitation exoskeletons integrating fractional-order impedance control, computed-torque compensation, and a momentum-based nonlinear disturbance observer. By combining Jacobian-transpose force mapping, fractional-order impedance shaping, and observer-based compensation, the framework enhances compliant yielding and tracking robustness under non-ideal dynamics. Simulation results show that, under severe spasticity-like impact, interaction force remains within 45 N. Under 30% mass mismatch and strong friction, tracking accuracy improves without reaching the 60 N·m torque limit. Under tremor-like disturbance, 4-8 Hz oscillations are attenuated while low-frequency voluntary motion is preserved, improving compliance, disturbance rejection, and torque smoothness.
This letter proposes a model-based vibration attenuation method for variable-impedance control of a 1-degree-of-freedom active-passive upper-limb exoskeleton. Static and dynamic human efforts are compensated separately, the variable-impedance profile follows a standard law, and the attenuator is derived from identified...
Yun-Tian Wang, J. Mcphee· IEEE Robotics and Automation...· 0 citations
Fixed assistance cannot match changing lower-limb motor capability, while excessive intervention can suppress voluntary effort. This paper proposes assistance-as-needed control using position-velocity dual impedance. The framework defines a motion-state parameter from trajectory error and human-robot interaction force;...
Wei-Tong Wang, Zhi-Ming Wang· 2026 International Conferenc...· 0 citations
The proposed BS–ST-SMC architecture outperforms classical and traditional robust approaches, particularly in mitigating chattering and managing human–robot interaction uncertainties, particularly in mitigating chattering and managing human–robot interaction uncertainties.
Yukio Rosales-Luengas, Sergio Salazar, Saúl J. Rangel-Popoca et al.· Electronics· 0 citations
A Two-Degree-of-Freedom lower-limb exoskeleton for rehabilitation applications that combines trajectory tracking control with a force-feedback control system to improve human–exoskeleton interaction during rehabilitation movements is developed.
Khin Yadana Kyaw, D. Maneetham, Myo Min Aung· Engineering, Technology &...· 0 citations
Lower-limb exoskeletons are potential rehabilitation aids for regaining motor function after neurological and musculoskeletal disorders. However, most present controllers provide fixed or weakly adaptive help. They cannot ensure mandated tracking performance, robustness against uncertainties, or individualized aid acco...