• DocumentCode
    66989
  • Title

    Finite State Control of a Variable Impedance Hybrid Neuroprosthesis for Locomotion After Paralysis

  • Author

    Bulea, Thomas C. ; Kobetic, R. ; Audu, M.L. ; Schnellenberger, J.R. ; Triolo, R.J.

  • Author_Institution
    Functional & Appl. Biomech. Sect., Nat. Inst. of Health, Bethesda, MD, USA
  • Volume
    21
  • Issue
    1
  • fYear
    2013
  • fDate
    Jan. 2013
  • Firstpage
    141
  • Lastpage
    151
  • Abstract
    We have previously reported on a novel variable impedance knee mechanism (VIKM). The VIKM was designed as a component of a hybrid neuroprosthesis to regulate knee flexion. The hybrid neuroprosthesis is a device that uses a controllable brace to support the body against collapse while stimulation provides power for movement. The hybrid neuroprosthesis requires a control system to coordinate the actions of the VIKM with the stimulation system; the development and evaluation of such a controller is presented. Brace mounted sensors and a baseline open loop stimulation pattern are utilized as control signals to activate the VIKM during stance phase while simultaneously modulating muscle stimulation in an on-off fashion. The objective is twofold: reduce the amount of stimulation necessary for walking while simultaneously restoring more biologically correct knee motion during stance using the VIKM. Custom designed hardware and software components were developed for controller implementation. The VIKM hybrid neuroprosthesis (VIKM-HNP) was evaluated during walking in one participant with thoracic level spinal cord injury. In comparison to walking with functional neuromuscular stimulation alone, the VIKM-HNP restored near normal stance phase knee flexion during loading response and pre-swing phases while decreasing knee extensor stimulation by up to 40%.
  • Keywords
    biomedical equipment; bone; gait analysis; injuries; neuromuscular stimulation; open loop systems; prosthetics; sensors; VIKM hybrid neuroprosthesis; VIKM-HNP; baseline open loop stimulation pattern; biologically correct knee motion; brace mounted sensors; control signals; control system; controllable brace; custom designed hardware; finite state control; functional neuromuscular stimulation; knee extensor stimulation; loading response; locomotion; muscle stimulation; near normal stance phase knee flexion; paralysis; preswing phase; software components; stimulation system; thoracic level spinal cord injury; variable impedance hybrid neuroprosthesis; variable impedance knee mechanism; walking; Automata; Control systems; Knee; Legged locomotion; Loading; Muscles; Shock absorbers; Controllable orthosis; functional neuromuscular stimulation (FNS); gait; hybrid neuroprosthesis (HNP); spinal cord injury; Biofeedback, Psychology; Electric Impedance; Electric Stimulation Therapy; Equipment Design; Equipment Failure Analysis; Feedback; Gait Disorders, Neurologic; Humans; Joint Prosthesis; Leg; Muscle Contraction; Muscle, Skeletal; Robotics; Therapy, Computer-Assisted;
  • fLanguage
    English
  • Journal_Title
    Neural Systems and Rehabilitation Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1534-4320
  • Type

    jour

  • DOI
    10.1109/TNSRE.2012.2227124
  • Filename
    6353244