• DocumentCode
    1343643
  • Title

    Error Analysis of Nonconstant Admittivity for MR-Based Electric Property Imaging

  • Author

    Seo, Jin Keun ; Kim, Min-Oh ; Lee, Joonsung ; Choi, Narae ; Woo, Eung Je ; Kim, Hyung Joong ; Kwon, Oh In ; Kim, Dong-Hyun

  • Author_Institution
    Dept. of Comput. Sci. & Eng., Yonsei Univ., Seoul, South Korea
  • Volume
    31
  • Issue
    2
  • fYear
    2012
  • Firstpage
    430
  • Lastpage
    437
  • Abstract
    Magnetic resonance electrical property tomography (MREPT) is a new imaging modality to visualize a distribution of admittivity γ = σ+iωε inside the human body where σ and ε denote electrical conductivity and permittivity, respectively. Using B1 maps acquired by an magnetic resonance imaging scanner, it produces cross-sectional images of σ and ε at the Larmor frequency. Since current MREPT methods rely on an assumption of a locally homogeneous admittivity, there occurs a reconstruction error where this assumption fails. Rigorously analyzing the reconstruction error in MREPT, we showed that the error is fundamental and may cause technical difficulties in interpreting MREPT images of a general inhomogeneous object. We performed numerical simulations and phantom experiments to quantitatively support the error analysis. We compared the MREPT image reconstruction problem with that of magnetic resonance electrical impedance tomography (MREIT) to highlight distinct features of both methods to probe the same object in terms of its high- and low-frequency conductivity distributions, respectively. MREPT images showed large errors along boundaries where admittivity values changed whereas MREIT images showed no such boundary effects. Noting that MREIT makes use of the term neglected in MREPT, a novel MREPT admittivity image reconstruction method is proposed to deal with the boundary effects, which requires further investigation on the complex directional derivative in the real Euclidian space BBR3.
  • Keywords
    bioelectric potentials; biomedical MRI; electric admittance; electrical conductivity; error analysis; image reconstruction; medical image processing; permittivity; phantoms; Larmor frequency; MR based electric property imaging; MREPT image reconstruction; admittivity distribution; electrical conductivity; error analysis; magnetic resonance electrical impedance tomography; magnetic resonance electrical property tomography; nonconstant admittivity; permittivity; phantom experiments; real Euclidian space; reconstruction error; Conductivity; Image reconstruction; Magnetic resonance imaging; Permittivity; Phantoms; Tomography; B1 map; conductivity; magnetic resonance electrical impedance tomography (MREIT); magnetic resonance electrical property tomography (MREPT); permittivity; Algorithms; Computer Simulation; Electric Impedance; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Magnetic Resonance Imaging; Models, Biological; Phantoms, Imaging; Plethysmography, Impedance; Reproducibility of Results; Sensitivity and Specificity; Subtraction Technique;
  • fLanguage
    English
  • Journal_Title
    Medical Imaging, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0278-0062
  • Type

    jour

  • DOI
    10.1109/TMI.2011.2171000
  • Filename
    6036177