• DocumentCode
    663220
  • Title

    Electrocorticogram encoding of upper extremity movement trajectories

  • Author

    Wang, Po T. ; King, Christine E. ; Schombs, A. ; Lin, Jack J. ; Sazgar, Mona ; Hsu, Frank P. K. ; Shaw, Susan J. ; Millett, David E. ; Liu, Charles Y. ; Chui, Luis A. ; Nenadic, Zoran ; Do, An H.

  • Author_Institution
    Dept. of Biomed. Eng., Univ. of California, Irvine, Irvine, CA, USA
  • fYear
    2013
  • fDate
    6-8 Nov. 2013
  • Firstpage
    1429
  • Lastpage
    1432
  • Abstract
    Electrocorticogram (ECoG)-based brain computer interfaces (BCI) can potentially control upper extremity pros-theses to restore independent function to paralyzed individuals. However, current research is mostly restricted to the offline decoding of finger or 2D arm movement trajectories, and these results are modest. This study seeks to improve the fundamental understanding of the ECoG signal features underlying upper extremity movements to guide better BCI design. Subjects undergoing ECoG electrode implantation performed a series of elementary upper extremity movements in an intermittent flexion and extension manner. It was found that movement velocity, θ̇, had a high positive (negative) correlation with the instantaneous power of the ECoG high-γ band (80-160 Hz) during flexion (extension). Also, the correlation was low during idling epochs. Visual inspection of the ECoG high-γ band revealed power bursts during flexion/extension events that had a waveform that strongly resembled the corresponding flexion/extension event as seen on θ̇. These high-γ bursts were present in all elementary movements, and were spatially distributed in a somatotopic fashion. Thus, it can be concluded that the high-γ power of ECoG strongly encodes for movement trajectories, and can be used as an input feature in future BCIs.
  • Keywords
    brain-computer interfaces; electroencephalography; encoding; handicapped aids; medical signal processing; prosthetics; 2D arm movement trajectories; BCI design; ECoG electrode implantation; ECoG high-γ band revealed power bursts; ECoG signal features; brain-computer interface-controlled upper extremity prostheses; electrocorticogram encoding; electrocorticogram-based brain computer interfaces; idling epochs; intermittent extension manner; intermittent flexion manner; offline finger decoding; somatotopic fashion; upper extremity movement trajectories; Correlation; Decoding; Electrodes; Extremities; Prosthetics; Trajectory; Visualization;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Neural Engineering (NER), 2013 6th International IEEE/EMBS Conference on
  • Conference_Location
    San Diego, CA
  • ISSN
    1948-3546
  • Type

    conf

  • DOI
    10.1109/NER.2013.6696212
  • Filename
    6696212