DocumentCode
9613
Title
Noninvasive Transmural Electrophysiological Imaging Based on Minimization of Total-Variation Functional
Author
Jingjia Xu ; Dehaghani, Azar Rahimi ; Fei Gao ; Linwei Wang
Author_Institution
Comput. Biomed. Lab., Rochester Inst. of Technol., Rochester, NY, USA
Volume
33
Issue
9
fYear
2014
fDate
Sept. 2014
Firstpage
1860
Lastpage
1874
Abstract
While tomographic imaging of cardiac structure and kinetics has improved substantially, electrophysiological mapping of the heart is still restricted to the surface with little or no depth information beneath. The progress in reconstructing 3-D action potential from surface voltage data has been hindered by the intrinsic ill-posedness of the problem and the lack of a unique solution in the absence of prior assumptions. In this work, we propose a novel adaption of the total-variation (TV) prior to exploit the unique spatial property of transmural action potential of being piecewise smooth with a steep boundary (gradient) separating depolarized and repolarized regions. We present a variational TV-prior instead of a common discrete TV-prior for improved robustness to mesh resolution, and solve the TV-minimization by a sequence of weighted, first-order L2-norm minimization. In a large set of phantom experiments, the proposed method is shown to outperform existing quadratic methods in preserving the steep gradient of action potential along the border of infarcts, as well as in capturing the disruption to the normal path of electrical wavefronts. Real-data experiments also further demonstrate the potential of the proposed method in revealing the location and shape of infarcts when quadratic methods fail to do so.
Keywords
bioelectric phenomena; electrocardiography; gradient methods; medical image processing; minimisation; phantoms; TV-minimization; depolarized regions; discrete TV-prior; electrical wavefronts; first-order L2-norm minimization; noninvasive transmural electrophysiological imaging; phantom experiments; piecewise smooth; quadratic methods; repolarized regions; steep gradient; total-variation functional minimization; transmural action potential; variational TV-prior; Approximation methods; Electric potential; Equations; Heart; Image reconstruction; Mathematical model; TV; Inverse problem of electrocardiography; myocardial ischemia and infarction; noninvasive transmural electrophysiological imaging; total-variation minimization;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2014.2324900
Filename
6817555
Link To Document