• DocumentCode
    2378195
  • Title

    A five-state P300-based foot lifter orthosis: Proof of concept

  • Author

    Duvinage, Matthieu ; Castermans, Thierry ; Jiménez-Fabían, René ; Hoellinger, Thomas ; De Saedeleer, Caty ; Petieau, Mathieu ; Seetharaman, Karthik ; Cheron, Guy ; Verlinden, Olivier ; Dutoit, Thierry

  • Author_Institution
    MRDV Lab., Univ. of Mons, Mons, Belgium
  • fYear
    2012
  • fDate
    9-11 Jan. 2012
  • Firstpage
    1
  • Lastpage
    6
  • Abstract
    Current lower limb prostheses do not integrate recent developments in robotics and in Brain-Computer Interfaces (BCIs). In fact, active lower limb prostheses seldom consider the user´s intent, they often determine the correct movement from those of healthy parts of the body or from the residual limb. Recently, an emerging idea for non-invasive BCIs was proposed to allow such low bitrate systems to control a lower limb prosthesis thanks to a Central Pattern Generator (CPG) widely used in robotics. This CPG allows to automatically generate a periodic gait pattern. Furthermore, the CPG pattern frequency and magnitude can be adapted according to the specific gait behavior of the patient and his desired speed. This paper proves the concept of combining a human gait model based on a CPG and a classic but non-natural P300 BCI in order to consider the user´s intent. The details of how the entire chain can be practically implemented are given. Finally, preliminary results on four healthy subjects for a four-speed P300-based lower limb orthosis with a non-control state are presented. Globally, results are satisfying and prove the feasibility of such systems.
  • Keywords
    bioelectric potentials; brain-computer interfaces; gait analysis; orthotics; physiological models; prosthetics; BCI; brain-computer interfaces; central pattern generator; evoked potential; five-state P300-based foot lifter; human gait model; lower limb prostheses; orthosis; Actuators; Electroencephalography; Foot; Humans; Legged locomotion; Oscillators; Prosthetics; Brain-Computer Interfaces; Human Gait; Neuroprosthesis; PCPG; Rehabilitation;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Biosignals and Biorobotics Conference (BRC), 2012 ISSNIP
  • Conference_Location
    Manaus
  • Print_ISBN
    978-1-4673-2476-2
  • Type

    conf

  • DOI
    10.1109/BRC.2012.6222193
  • Filename
    6222193