DocumentCode
1545057
Title
Three-dimensional electrical impedance tomography based on the complete electrode model
Author
Vauhkonen, Päivi J. ; Vauhkonen, Marko ; Savolainen, Tuomo ; Kaipio, Jari P.
Author_Institution
Dept. of Appl. Phys., Kuopio Univ., Finland
Volume
46
Issue
9
fYear
1999
Firstpage
1150
Lastpage
1160
Abstract
In electrical impedance tomography an approximation for the internal resistivity distribution is computed based on the knowledge of the injected currents and measured voltages on the surface of the body. It is often assumed that the injected currents are confined to the two-dimensional (2-D) electrode plane and the reconstruction is based on 2-D assumptions. However, the currents spread out in three dimensions and, therefore, off-plane structures have significant effect on the reconstructed images. In this paper we propose a finite element-based method for the reconstruction of three-dimensional resistivity distributions. The proposed method is based on the so-called complete electrode model that takes into account the presence of the electrodes and the contact impedances. Both the forward and the inverse problems are discussed and results from static and dynamic (difference) reconstructions with real measurement data are given. It is shown that in phantom experiments with accurate finite element computations it is possible to obtain static images that are comparable with difference images that are reconstructed from the same object with the empty (saline filled) tank as a reference.
Keywords
biomedical electrodes; computerised tomography; electric impedance imaging; finite element analysis; image reconstruction; inverse problems; medical image processing; 3D electrical impedance tomography; complete electrode model; contact impedances; dynamic reconstructions; finite element-based method; forward problem; ill-posed problem; injected currents; internal resistivity distribution; inverse problem; off-plane structures; phantom experiments; reconstructed images; static reconstructions; Conductivity; Current measurement; Distributed computing; Electrodes; Finite element methods; Image reconstruction; Impedance measurement; Surface impedance; Tomography; Two dimensional displays; Electric Conductivity; Electrodes; Image Processing, Computer-Assisted; Models, Theoretical; Phantoms, Imaging; Tomography;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.784147
Filename
784147
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