• DocumentCode
    2037630
  • Title

    Characterization of tfLIFE Neural Response for the Control of a Cybernetic Hand

  • Author

    Citi, L. ; Carpaneto, J. ; Yoshida, K. ; Hoffmann, K.P. ; Koch, K.-P. ; Dario, P. ; Micera, S.

  • Author_Institution
    IMT Inst. for Adv. Studies, Lucca
  • fYear
    2006
  • fDate
    20-22 Feb. 2006
  • Firstpage
    477
  • Lastpage
    482
  • Abstract
    The development of interfaces that link the human nervous system with robotic devices or man-made devices has been a main area of research for several groups in the world. These groups focus on the restoration of motor and sensory function to those with degenerative diseases, injury or in amputees. A key component is these systems is a fast, intuitive, bidirectional interface between the biological and mechatronic systems that allows the robotic limb to be controlled as if it were a natural part of the body. Current hand prostheses use electromyographic (EMG) signals, but are limited to a small number of channels and to sensing volition. To achieve sensory feedback and a higher number of control channels, a neuroprosthetic interface are required. In the present study, thin-film longitudinal intra-fascicular electrodes (tfLIFE) were implanted in the sciatic nerve of the rabbit. Various sensory stimuli were applied to the hind limb of the rabbit and the elicited signals were recorded using the tfLIFEs. These signals were processed to determine whether the different modes of information could be decoded. Signals were Kalman filtered, wavelet denoised, and spike sorted. The classes of spikes found were then used to infer the stimulus applied to the rabbit. Although the signals acquired from a single tLIFE gave poor stimulus recognition, the combination of the signals from multiple sites led to better results. The spike sorting algorithm is also helped by the use of temporal correlation between the channels. A direct outcome of the results is the possibility of increasing the number of channels of control possible with a prosthetic limb
  • Keywords
    biocybernetics; biomedical electrodes; electromyography; medical robotics; neurophysiology; prosthetics; EMG; Kalman filter; cybernetic hand; electromyographic signal; hand prostheses; human nervous system; hybrid bionic system; motor function; neural response; neuroprosthetic interface; prosthetic limb; robotic device; sciatic nerve; sensory function; sensory stimuli; spike sorting algorithm; temporal correlation; thin-film longitudinal intra-fascicular electrode; wavelet denoising; Biological control systems; Control systems; Cybernetics; Degenerative diseases; Humans; Injuries; Mechatronics; Nervous system; Rabbits; Robot sensing systems;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Biomedical Robotics and Biomechatronics, 2006. BioRob 2006. The First IEEE/RAS-EMBS International Conference on
  • Conference_Location
    Pisa
  • Print_ISBN
    1-4244-0040-6
  • Type

    conf

  • DOI
    10.1109/BIOROB.2006.1639134
  • Filename
    1639134