DocumentCode
3596967
Title
Activation time imaging in the presence of myocardial ischemia: Choice of initial estimates for iterative solvers
Author
Schulze, W.H.W. ; Potyagaylo, D. ; Dossel, O.
Author_Institution
Inst. of Biomed. Eng., Karlsruhe Inst. of Technol. (KIT), Karlsruhe, Germany
fYear
2012
Firstpage
961
Lastpage
964
Abstract
In this work, a simulation study is performed that demonstrates how activation times of cardiac action potentials can be reconstructed from body surface potential maps (BSPMs). An extrasystole is simulated in the ventricles, which are affected by myocardial ischemia or necrosis, and the related BSPM is calculated. Initial estimates are required for iterative algorithms that solve the related non-linear reconstruction problem. As a good initial estimate is essential for a proper reconstruction, the robustness of two methods is tested against the influence of pathological conditions: the critical times method and a linear timeintegral based method. While the first method extrapolates activation times into inactive tissue in this study, the latter carves out ischemic or necrotic tissue as homogeneous regions. In an outlook, a concept for the combination of both methods is proposed.
Keywords
bioelectric potentials; biological tissues; biomedical MRI; diseases; electrocardiography; image reconstruction; image segmentation; iterative methods; medical image processing; muscle; surface potential; MRI; activation time extrapolation; activation time imaging; body surface potential maps; cardiac action potentials; electrocardiography; extrasystole; homogeneous regions; image segmentation; ischemic tissue; iterative algorithms; iterative solver estimates; linear time-integral based method; magnetic resonance imaging; myocardial ischemia; necrosis; necrotic tissue; nonlinear reconstruction problem; pathological conditions; ventricles; Electrocardiography; Heart; Inverse problems; Myocardium; Pathology; Reliability;
fLanguage
English
Publisher
ieee
Conference_Titel
Computing in Cardiology (CinC), 2012
ISSN
2325-8861
Print_ISBN
978-1-4673-2076-4
Type
conf
Filename
6420555
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