DocumentCode :
392502
Title :
Simulated atrial fibrillation in a computer model of human atria
Author :
Jacquemet, V. ; Zozor, S. ; Virag, N. ; Blanc, O. ; Vesin, J.M. ; Henriquez, C.S. ; Pruvot, E. ; Kappenberger, L.
Author_Institution :
Signal Process. Inst., Ecole Polytech. Fed. de Lausanne, Switzerland
Volume :
1
fYear :
2002
fDate :
2002
Firstpage :
393
Abstract :
Atrial arrhythmias are the most frequent rhythm disorder in humans and often lead to severe complications such as heart failure and stroke. While different mapping techniques have provided significant information on the electro-physiological processes associated with atrial fibrillation (AF), the mechanisms underlying its initiation and maintenance remain unclear. To assist the study of the complex, spatio-temporal dynamics of AF, we developed a simplified homogeneous, isotropic, but realistic-size computer model of human atria that uses an ionic-based membrane model and whose geometry is derived from segmented MRI dataset. By representing the domain as a three-dimensional monolayer, the computational load is sufficiently reduced to enable the simulation of long duration arrhythmia. With this model, simulated atrial fibrillation (SAF), i.e. multiple reentrant wavelets, can be induced using a single-site burst pacing protocol. The model outputs both transmembrane potential maps and electrograms at any location in the atria, facilitating comparisons between simulation results and experimental or clinical data. It is shown here that our SAF model presents the same characteristics of spatio-temporal organization as real AF in terms of the correlation coefficient proposed by Botteron et al. (1995).
Keywords :
bioelectric potentials; biomedical MRI; biomembranes; digital simulation; electrocardiography; image segmentation; medical image processing; physiological models; atrial arrhythmias; atrial fibrillation; computational load; electrograms; electrophysiological processes; heart failure; homogeneous isotropic realistic-size computer model; ionic-based membrane model segmented MRI dataset; long duration arrhythmia; multiple reentrant wavelets; rhythm disorder; single-site burst pacing protocol; spatio-temporal dynamics; stroke; three-dimensional monolayer; transmembrane potential maps; Atrial fibrillation; Biomembranes; Computational geometry; Computational modeling; Computer simulation; Heart; Humans; Magnetic resonance imaging; Rhythm; Solid modeling;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Signal Processing, 2002. DSP 2002. 2002 14th International Conference on
Print_ISBN :
0-7803-7503-3
Type :
conf
DOI :
10.1109/ICDSP.2002.1189668
Filename :
1189668
Link To Document :
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