• DocumentCode
    796918
  • Title

    An equivalent body surface charge model representing three-dimensional bioelectrical activity

  • Author

    He, Bin ; Chernyak, Yuri B. ; Cohen, Richard J.

  • Author_Institution
    Div. of Health Sci. & Technol., MIT, Cambridge, MA, USA
  • Volume
    42
  • Issue
    7
  • fYear
    1995
  • fDate
    7/1/1995 12:00:00 AM
  • Firstpage
    637
  • Lastpage
    646
  • Abstract
    A new surface-source model has been developed to account for the bioelectrical potential on the body surface. A single-layer surface-charge model on the body surface has been developed to equivalently represent bioelectrical sources inside the body. The boundary conditions on the body surface are discussed in relation to the surface-charge in a half-space conductive medium. The equivalent body surface charge is shown to be proportional to the normal component of the electric field on the body surface just outside the body. The spatial resolution of the equivalent surface-charge distribution appears intermediate between those of the body surface potential distribution and the body surface Laplacian distribution. An analytic relationship between the equivalent surface-charge and the surface Laplacian of the potential was found for a half-space conductive medium. The effects of finite spatial sampling and noise on the reconstruction of the equivalent surface-charge were evaluated by computer simulations. It was found through computer simulations that the reconstruction of the equivalent body surface-charge from the body surface Laplacian distribution is very stable against noise and finite spatial sampling. The present results suggest that the equivalent body surface-charge model may provide an additional insight to one´s understanding of bioelectric phenomena.
  • Keywords
    bioelectric phenomena; electric charge; physiological models; surface potential; 3D bioelectrical activity; bioelectrical sources representation; computer simulations; electric field normal component; equivalent body surface charge model; finite spatial sampling; half-space conductive medium; single-layer surface-charge model; Bioelectric phenomena; Chemical technology; Computer simulation; Conductors; Electric potential; Helium; Inverse problems; Laplace equations; Sampling methods; Surface reconstruction; Body Surface Potential Mapping; Computer Simulation; Electric Impedance; Humans; Models, Biological;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.391162
  • Filename
    391162