DocumentCode :
1538443
Title :
Shape Deformation in Two-Dimensional Electrical Impedance Tomography
Author :
Boyle, A. ; Adler, A. ; Lionheart, W.R.B.
Author_Institution :
Dept. of Syst. & Comput. Eng., Carleton Univ., Ottawa, ON, Canada
Volume :
31
Issue :
12
fYear :
2012
Firstpage :
2185
Lastpage :
2193
Abstract :
Electrical impedance tomography (EIT) uses measurements from surface electrodes to reconstruct an image of the conductivity of the contained medium. However, changes in measurements result from both changes in internal conductivity and changes in the shape of the medium relative to the electrode positions. Failure to account for shape changes results in a conductivity image with significant artifacts. Previous work to address shape changes in EIT has shown that in some cases boundary shape and electrode location can be uniquely determined for isotropic conductivities; however, for geometrically conformal changes, this is not possible. This prior work has shown that the shape change problem can be partially addressed. In this paper, we explore the limits of compensation for boundary movement in EIT using three approaches. First, a theoretical model was developed to separate a deformation vector field into conformal and non-conformal components, from which the reconstruction limits may be determined. Next, finite element models were used to simulate EIT measurements from a domain whose boundary has been deformed. Finally, an experimental phantom was constructed from which boundary deformation measurements were acquired. Results, both in simulation and with experimental data, suggest that some electrode movement and boundary distortions can be reconstructed based on conductivity changes alone while reducing image artifacts in the process.
Keywords :
biomechanics; biomedical electrodes; deformation; distortion; electric impedance imaging; finite element analysis; image reconstruction; medical image processing; phantoms; physiological models; EIT measurements; boundary deformation measurements; boundary movement; boundary shape; deformation vector field; electrode location; electrode positions; finite element models; geometrically conformal changes; image conductivity; image reconstruction; internal conductivity; isotropic conductivities; medium relative shape; nonconformal components; phantom; shape change problem; shape deformation; surface electrodes; two-dimensional electrical impedance tomography; Conductivity; Electrodes; Finite element methods; Image reconstruction; Shape; Tomography; Vectors; Biomedical imaging; conformal mapping; finite element methods; impedance measurement; reconstruction algorithms; shape measurement; tomography; Algorithms; Computer Simulation; Electric Conductivity; Electric Impedance; Electrodes; Finite Element Analysis; Image Processing, Computer-Assisted; Models, Theoretical; Phantoms, Imaging; Tomography;
fLanguage :
English
Journal_Title :
Medical Imaging, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0062
Type :
jour
DOI :
10.1109/TMI.2012.2204438
Filename :
6216437
Link To Document :
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