TY - JOUR
T1 - A hybrid active force control of a lower limb exoskeleton for gait rehabilitation
AU - Taha, Zahari
AU - Abdul Majeed, Anwar P.P.
AU - Zainal Abidin, Amar Faiz
AU - Hashem Ali, Mohammed A.
AU - Khairuddin, Ismail Mohd
AU - Deboucha, Abdelhakim
AU - Wong Paul Tze, Mohd Yashim
N1 - Publisher Copyright:
© 2018 Walter de Gruyter GmbH, Berlin/Boston 2018.
PY - 2018/7/26
Y1 - 2018/7/26
N2 - Owing to the increasing demand for rehabilitation services, robotics have been engaged in addressing the drawbacks of conventional rehabilitation therapy. This paper focuses on the modelling and control of a three-link lower limb exoskeleton for gait rehabilitation that is restricted to the sagittal plane. The exoskeleton that is modelled together with a human lower limb model is subjected to a number of excitations at its joints while performing a joint space trajectory tracking, to investigate the effectiveness of the proposed controller in compensating disturbances. A particle swarm optimised active force control strategy is proposed to facilitate disturbance rejection of a conventional proportional-derivative (PD) control algorithm. The simulation study provides considerable insight into the robustness of the proposed method in attenuating the disturbance effect as compared to the conventional PD counterpart without compromising its tracking performance. The findings from the study further suggest its potential employment on a lower limb exoskeleton.
AB - Owing to the increasing demand for rehabilitation services, robotics have been engaged in addressing the drawbacks of conventional rehabilitation therapy. This paper focuses on the modelling and control of a three-link lower limb exoskeleton for gait rehabilitation that is restricted to the sagittal plane. The exoskeleton that is modelled together with a human lower limb model is subjected to a number of excitations at its joints while performing a joint space trajectory tracking, to investigate the effectiveness of the proposed controller in compensating disturbances. A particle swarm optimised active force control strategy is proposed to facilitate disturbance rejection of a conventional proportional-derivative (PD) control algorithm. The simulation study provides considerable insight into the robustness of the proposed method in attenuating the disturbance effect as compared to the conventional PD counterpart without compromising its tracking performance. The findings from the study further suggest its potential employment on a lower limb exoskeleton.
KW - particle swarm optimisation
KW - rehabilitation
KW - robust
KW - trajectory tracking control
UR - http://www.scopus.com/inward/record.url?scp=85037691414&partnerID=8YFLogxK
U2 - 10.1515/bmt-2016-0039
DO - 10.1515/bmt-2016-0039
M3 - Article
C2 - 28809745
AN - SCOPUS:85037691414
SN - 0013-5585
VL - 63
SP - 491
EP - 500
JO - Biomedizinische Technik
JF - Biomedizinische Technik
IS - 4
ER -