Title :
Equivalent Isotropic Conductivity Image Reconstruction in MREIT
Author :
Seo, Jin Keun ; Lee, Byung Il ; Woo, Eung Je
Author_Institution :
Yonsei Univ., Seoul
Abstract :
Magnetic resonance electrical impedance tomography (MREIT) provides cross-sectional images of a conductivity distribution inside an electrically conducting object such as the human body. Injecting multiple currents into an imaging object and measuring induced magnetic flux densities, MREIT image reconstruction algorithms such as the harmonic Bz. algorithm produce isotropic conductivity images of the object. Noting that conductivities of certain biological tissues including white matters in the brain are known to be anisotropic, we provide a way to interpret reconstructed images based on the analysis about how an anisotropic conductivity is handled in the harmonic Bz algorithm. We found that reconstructed equivalent isotropic conductivity values are strongly affected by the shape of an anisotropic region in the two-dimensional imaging plane. When an anisotropic tissue is longer in one direction, its equivalent isotropic conductivity value follows the component of the anisotropic conductivity tensor in that direction. The dependency of the equivalent isotropic conductivity on the shape of an anisotropic tissue could be advantageous since it allows us to estimate the direction of the tissue when we are provided with some qualitative a priori knowledge on the anisotropy of the tissue.
Keywords :
bioelectric phenomena; biological tissues; brain; electric impedance imaging; image reconstruction; medical image processing; neurophysiology; anisotropic conductivity tensor; biological tissues; brain; conductivity distribution; equivalent isotropic conductivity image reconstruction; harmonic algorithm; image reconstruction algorithms; magnetic flux densities; magnetic resonance electrical impedance tomography; two-dimensional imaging plane; white matters; Anisotropic magnetoresistance; Conductivity; Density measurement; Humans; Image reconstruction; Impedance; Magnetic resonance; Magnetic resonance imaging; Shape; Tomography;
Conference_Titel :
Noninvasive Functional Source Imaging of the Brain and Heart and the International Conference on Functional Biomedical Imaging, 2007. NFSI-ICFBI 2007. Joint Meeting of the 6th International Symposium on
Conference_Location :
Hangzhou
Print_ISBN :
978-1-4244-0949-5
Electronic_ISBN :
978-1-4244-0949-5
DOI :
10.1109/NFSI-ICFBI.2007.4387730