DocumentCode
1107512
Title
Electrical impedance tomography using induced currents
Author
Gençer, N.G. ; Kuzuoglu, M. ; Ider, Y.Z.
Author_Institution
Dept. of Electr. & Electron. Eng., Middle East Tech. Univ., Ankara, Turkey
Volume
13
Issue
2
fYear
1994
fDate
6/1/1994 12:00:00 AM
Firstpage
338
Lastpage
350
Abstract
The mathematical basis of a new imaging modality, induced current electrical impedance tomography (EIT), is investigated, The ultimate aim of this technique is the reconstruction of conductivity distribution of the human body, from voltage measurements made between electrodes placed on the surface, when currents are induced inside the body by applied time varying magnetic fields. In this study the two-dimensional problem is analyzed. A specific 9-coil system for generating nine different exciting magnetic fields (50 kHz) and 16 measurement electrodes around the object are assumed, The partial differential equation for the scaler potential function in the conductive medium is derived and finite element method (FEM) is used for its solution. Sensitivity matrix, which relates the perturbation in measurements to the conductivity perturbations, is calculated. Singular value decomposition of the sensitivity matrix shows that there are 135 independent measurements. It is found that measurements are less sensitive to changes in conductivity of the object´s interior. While in this respect induced current EIT is slightly inferior to the technique of injected current EIT (using Sheffield protocol), its sensitivity matrix is better conditioned. The images obtained are found to be comparable to injected current EIT images In resolution. Design of a coil system for which parameters such as sensitivity to inner regions and condition number of the sensitivity matrix are optimum, remains to be made
Keywords
computerised tomography; electric impedance imaging; 2D problem; 50 kHz; Sheffield protocol; coil system design; conductive medium; conductivity distribution reconstruction; electrical impedance tomography; human body; induced currents; measurement perturbation; medical diagnostic imaging; partial differential equation; scaler potential function; sensitivity matrix; singular value decomposition; surface electrodes; time varying magnetic fields; voltage measurements; Conductivity measurement; Electrodes; Humans; Image reconstruction; Magnetic field measurement; Matrix decomposition; Surface impedance; Surface reconstruction; Tomography; Voltage measurement;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/42.293927
Filename
293927
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