• DocumentCode
    1002552
  • Title

    Stimulation Pattern-Free Control of FES Cycling: Simulation Study

  • Author

    Kim, Chul-Seung ; Eom, Gwang-Moon ; Hase, Kazunori ; Khang, Gon ; Tack, Gye-Rae ; Yi, Jeong-Han ; Jun, Jae-Hoon

  • Author_Institution
    Konkuk Univ., Choongju
  • Volume
    38
  • Issue
    1
  • fYear
    2008
  • Firstpage
    125
  • Lastpage
    134
  • Abstract
    The aim of this paper is to investigate control strategies for functional electrical simulation (FES) cycling, with particular focus on the generation of stimulation intensities for multiple muscles, without any predetermined stimulation pattern. The control system is developed by imitating the biological neuronal control system. Specifically, the control signal on the level of joint torque (quasi-joint torque) is generated from the feedback information of lower extremities. The quasi-joint torque is then distributed to each muscle and the muscle delay is compensated, and finally, the stimulation intensity is determined. Parameters of the control system are optimized by the genetic algorithm with cost function of energy consumption and cadence error. The proposed control system is evaluated by computer simulation. The controller generates efficient stimulation even during the muscle fatigue process and successfully continues cycling without any predetermined stimulation pattern. Moreover, the controller is robust to the parameter error in the muscle delay compensator and also to the disturbances. It is expected that the proposed method would improve the FES cycling performance and relieve patients by eliminating the experimental determination of the stimulation patterns.
  • Keywords
    genetic algorithms; medical control systems; neuromuscular stimulation; biological neuronal control system; functional electrical simulation cycling; genetic algorithm; multiple muscles; muscle delay compensator; muscle fatigue process; quasijoint torque; stimulation pattern-free control; Biological control systems; Biological system modeling; Computer errors; Control systems; Delay; Error correction; Muscles; Neurofeedback; Signal generators; Torque control; Control; disturbance; fatigue; functional electrical simulation (FES) cycling; stimulation pattern;
  • fLanguage
    English
  • Journal_Title
    Systems, Man, and Cybernetics, Part C: Applications and Reviews, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1094-6977
  • Type

    jour

  • DOI
    10.1109/TSMCC.2007.900650
  • Filename
    4399659