DocumentCode
29228
Title
Using Transmural Regularization and Dynamic Modeling for Noninvasive Cardiac Potential Imaging of Endocardial Pacing With Imprecise Thoracic Geometry
Author
Erem, B. ; Coll-Font, Jaume ; Martinez Orellana, R. ; St´ovicek, Petr ; Brooks, D.H.
Author_Institution
Dept. of Radiol., Boston Children´s Hosp., Boston, MA, USA
Volume
33
Issue
3
fYear
2014
fDate
Mar-14
Firstpage
726
Lastpage
738
Abstract
Cardiac electrical imaging from body surface potential measurements is increasingly being seen as a technology with the potential for use in the clinic, for example for pre-procedure planning or during-treatment guidance for ventricular arrhythmia ablation procedures. However several important impediments to widespread adoption of this technology remain to be effectively overcome. Here we address two of these impediments: the difficulty of reconstructing electric potentials on the inner (endocardial) as well as outer (epicardial) surfaces of the ventricles, and the need for full anatomical imaging of the subject´s thorax to build an accurate subject-specific geometry. We introduce two new features in our reconstruction algorithm: a nonlinear low-order dynamic parameterization derived from the measured body surface signals, and a technique to jointly regularize both surfaces. With these methodological innovations in combination, it is possible to reconstruct endocardial activation from clinically acquired measurements with an imprecise thorax geometry. In particular we test the method using body surface potentials acquired from three subjects during clinical procedures where the subjects´ hearts were paced on their endocardia using a catheter device. Our geometric models were constructed using a set of CT scans limited in axial extent to the immediate region near the heart. The catheter system provides a reference location to which we compare our results. We compare our estimates of pacing site localization, in terms of both accuracy and stability, to those reported in a recent clinical publication , where a full set of CT scans were available and only epicardial potentials were reconstructed.
Keywords
bioelectric potentials; catheters; computerised tomography; diseases; electric impedance imaging; electrocardiography; image reconstruction; medical image processing; surface potential; body surface potential measurements; body surface signals; cardiac electrical imaging; catheter system; clinically acquired measurements; computerised tomography scans; during-treatment guidance; dynamic modeling; electric potential reconstruction; endocardial activation; endocardial pacing; full anatomical imaging; imprecise thoracic geometry; imprecise thorax geometry; noninvasive cardiac potential imaging; nonlinear low-order dynamic parameterization; pacing site localization; preprocedure planning; reconstruction algorithm; subject hearts; subject thorax; subject-specific geometry; transmural regularization; ventricles; ventricular arrhythmia ablation procedures; Approximation methods; Computed tomography; Electric potential; Heart; Image reconstruction; Surface reconstruction; Biomedical imaging; biomedical signal processing; electric potential imaging; electrocardiography; inverse problems;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2013.2295220
Filename
6685833
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