Robust Active Disturbance Rejection Control via Control Lyapunov Functions: Application to Actuated-Ankle–Foot-Orthosis

In this paper, the problem of trajectory tracking, for an Actuated-Ankle–Foot-Orthosis(AAFO) to assist the gait of paretic patients, is addressed. The control strategy is based on the system’s flatness property, which allows the development of an Active Disturbance Rejection Control (ADRC). For this...

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Bibliographic Details
Published inControl engineering practice Vol. 80; pp. 49 - 60
Main Authors Guerrero-Castellanos, J.F., Rifaï, H., Arnez-Paniagua, V., Linares-Flores, J., Saynes-Torres, L., Mohammed, S.
Format Journal Article
LanguageEnglish
Published Elsevier Ltd 01.11.2018
Elsevier
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Summary:In this paper, the problem of trajectory tracking, for an Actuated-Ankle–Foot-Orthosis(AAFO) to assist the gait of paretic patients, is addressed. The control strategy is based on the system’s flatness property, which allows the development of an Active Disturbance Rejection Control (ADRC). For this purpose, an Extended State Observer (ESO) is designed to estimate on-line the unknown disturbances and canceled by injecting the output of ESO into the feedback loop. A stability analysis of the estimation error dynamics is carried out in the Input-to State Stability (ISS) framework, stating the observer’s robustness. On the other hand, the feedback design is based on the existence of a Control Lyapunov Function (CLF) and the Sontag’s formula. The stability analysis discloses that the tracking trajectory controller is ISS, i.e. robustly stable. Finally, the effectiveness of the ADRC strategy is validated by performing real-time tests with a healthy subject walking on a treadmill at self-selected speed. The experimental results validate the theoretical analysis. [Display omitted] •An Actuated-Ankle–Foot-Orthosis (AAFO) to assist the gait is addressed.•Development of a Robust Active Disturbance Rejection Control (ADRC).•The feedback design is based on the existence of a CLF and the Sontag’s formula.•A stability analysis for the entire system is carried out in the ISS framework.•Real-time tests with a healthy subject validate the proposed control strategy.
ISSN:0967-0661
1873-6939
DOI:10.1016/j.conengprac.2018.08.008