• DocumentCode
    953843
  • Title

    Fast Nonlinear Image Reconstruction for Scanning Impedance Imaging

  • Author

    Liu, Hongze ; Hawkins, Aaron R. ; Schultz, Stephen M. ; Oliphant, Travis E.

  • Author_Institution
    Brigham Young Univ., Provo
  • Volume
    55
  • Issue
    3
  • fYear
    2008
  • fDate
    3/1/2008 12:00:00 AM
  • Firstpage
    970
  • Lastpage
    977
  • Abstract
    Scanning (electrical) impedance imaging (SII) is a novel high-resolution imaging modality that has the potential of imaging the electrical properties of thin biological tissues. In this paper, we apply the reciprocity principle to the modeling of the SII system and develop a fast nonlinear inverse method for image reconstruction. The method is fast because it uses convolution to eliminate the requirement of a numerical solver for the 3-D electrostatic field in the SII system. Numerical results show that our approach can accurately reveal the exact conductivity distribution from the measured current map for different 2-D simulation phantoms. Experiments were also performed using our SII system for a piece of butterfly wing and breast cancer cells. Two-dimensional current images were measured and corresponding quantitative conductivity images were restored using our approach. The reconstructed images are quantitative and reveal details not present in the measured images.
  • Keywords
    bioelectric phenomena; biological organs; cancer; cellular biophysics; convolution; electric impedance imaging; image reconstruction; medical image processing; phantoms; breast cancer cells; butterfly wing; convolution; electrical properties; fast image reconstruction; high-resolution imaging; nonlinear image reconstruction; nonlinear inverse method; phantoms; reciprocity principle; scanning impedance imaging; thin biological tissues; two-dimensional current images; Biological system modeling; Biological tissues; Conductivity measurement; Convolution; Current measurement; Electrostatics; High-resolution imaging; Image reconstruction; Impedance; Inverse problems; Biomedical impedance imaging; image reconstruction; impedance imaging; Algorithms; Computer Systems; Image Enhancement; Image Interpretation, Computer-Assisted; Microscopy, Scanning Probe; Nonlinear Dynamics; Plethysmography, Impedance; Reproducibility of Results; Sensitivity and Specificity;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/TBME.2007.905485
  • Filename
    4360121