DocumentCode :
1396461
Title :
Simulation of depolarization in a membrane-equations-based model of the anisotropic ventricle
Author :
Huiskamp, Geertjan
Author_Institution :
Dept. of Clinical Neurophysiol., Univ. Hosp. Utrecht, Netherlands
Volume :
45
Issue :
7
fYear :
1998
fDate :
7/1/1998 12:00:00 AM
Firstpage :
847
Lastpage :
855
Abstract :
The results of a simulation study of the propagation of depolarization in inhomogeneous anisotropic (monodomain) myocardial tissue are presented. Simulations are based on modified Beeler-Reuter membrane equations, and performed on a block of anisotropic myocardium with rotating fiber geometry, measuring 1 cm×1 cm×0.3 cm, at various levels of spatial discretization (0.15 mm, 0.30 mm, 0.60 mm). At a discretization level of 0.6 mm the algorithm allowed the simulation in a realistically shaped model of the ventricle, including rotational anisotropy, as well. For this simulation results are justified by comparing results for the block at various levels of discretization, for which the surface to volume ratio has been adjusted. By placing the model ventricle in a realistically shaped (human) volume conductor model, realistic body surface potentials (QRST waveforms) are simulated.
Keywords :
biomembranes; digital simulation; electrocardiography; physiological models; surface potential; QRST waveforms; algorithm; anisotropic myocardium; anisotropic ventricle; depolarization; discretization level; inhomogeneous anisotropic monodomain myocardial tissue; membrane-equations-based model; model ventricle; modified Beeler-Reuter membrane equations; realistic body surface potentials; realistically shaped human volume conductor model; realistically shaped model; rotating fiber geometry; rotational anisotropy; simulation study; spatial discretization; surface to volume ratio; Anisotropic magnetoresistance; Biological system modeling; Biomembranes; Equations; Geometry; Humans; Myocardium; Performance evaluation; Rotation measurement; Solid modeling; Anisotropy; Body Surface Potential Mapping; Cardiac Pacing, Artificial; Electric Conductivity; Heart Ventricles; Humans; Models, Cardiovascular; Reference Values; Ventricular Premature Complexes;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.686792
Filename :
686792
Link To Document :
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