• DocumentCode
    785957
  • Title

    Feedback Control of Oxygen Uptake During Robot-Assisted Gait

  • Author

    Pennycott, Andrew ; Hunt, Kenneth J. ; Coupaud, Sylvie ; Allan, David B. ; Kakebeeke, Tanja H.

  • Author_Institution
    Dept. of Mech. Eng., Univ. of Glasgow, Glasgow, UK
  • Volume
    18
  • Issue
    1
  • fYear
    2010
  • Firstpage
    136
  • Lastpage
    142
  • Abstract
    Body-weight-supported robot-assisted devices can be used to promote gait rehabilitation and as exercise tools for neurologically impaired persons such as stroke and spinal-cord-injured patients. Here, we propose a novel feedback-control structure for real-time control of oxygen uptake during robot-assisted gait, in which we use the following methods. 1) A feedback-control structure is proposed, consisting of a dynamic controller operating on target and actual levels of oxygen uptake in order to set a target work rate. Target work rate is achieved by an inner volitional feedback loop which relies on the subject´s exercise input. 2) The dynamic oxygen-uptake controller is based on an empirically derived model of the oxygen-uptake dynamics and is synthesized by pole placement. 3) The resulting control system is tested during the robot-assisted treadmill ambulation of five able-bodied subjects. A single linear controller was designed based on identification data from tests with one subject and used for closed-loop control tests with all five subjects. In all cases, the actual oxygen-uptake response closely followed the ideal response as specified by the feedback design parameters. The control of oxygen uptake during body-weight-supported robot-assisted ambulation is feasible in the able-bodied population; the robustness of the system is demonstrated within the class of subjects tested. Further testing is required to validate the approach with neurologically impaired subjects.
  • Keywords
    closed loop systems; control system synthesis; feedback; linear systems; medical robotics; oxygen; patient rehabilitation; pole assignment; body-weight-supported robot-assisted device; closed-loop control; dynamic oxygen-uptake controller; feedback control; gait rehabilitation; linear controller; neurologically impaired person; pole placement; robot-assisted gait; robot-assisted treadmill ambulation; Feedback control; rehabilitation engineering; robot-assisted gait; spinal-cord injury; system identification;
  • fLanguage
    English
  • Journal_Title
    Control Systems Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1063-6536
  • Type

    jour

  • DOI
    10.1109/TCST.2008.2009465
  • Filename
    4895717