DocumentCode :
561802
Title :
A coupled heart-torso framework for cardiac electrocardiographic simulation
Author :
Mao, H.D. ; Wang, L.W. ; Wong, C.L. ; Liu, H.F. ; Shi, P.C.
Author_Institution :
Rochester Inst. of Technol., Rochester, NY, USA
fYear :
2011
fDate :
18-21 Sept. 2011
Firstpage :
225
Lastpage :
228
Abstract :
The existing works of electrocardiogram (ECG) simulation generally use a static or so called ”one-way” electromechanical coupled heart model. However, electrical and mechanical activities of the heart are inter-dependent, and realistic ECG simulation can only be achieved when such coupled relationship is considered. In this paper, we propose an electromechanical coupled heart model that includes both electromechanical coupling and mecha-noelectrical feedback. The model contains four components: cardiac electrophysiological model, cardiac electromechanical coupling, cardiac mechanics model and cardiac mechanoelectrical feedback. For ECG simulation, the model is incorporated into a coupled heart-torso framework, under which the heart is represented by mesh-free nodes and the torso is represented by boundary elements. A direct projection from volumetric transmembrane potential maps (TMPs) to body surface potential maps (BSPs) can be established through meshfree-BEM method. We calculate ECG signals by the proposed framework and compare them with simulation results of a static heart model, and find the amplitude of T-wave is increased and action potential duration is slightly shortened due to the electromechanical coupled property.
Keywords :
bioelectric potentials; boundary-elements methods; diseases; electrocardiography; electromechanical effects; medical signal processing; ECG simulation; body surface potential maps; boundary element method; cardiac electrocardiographic simulation; cardiac electromechanical coupling; cardiac electrophysiological model; cardiac mechanics model; cardiac mechanoelectrical feedback; coupled heart-torso framework; electrical activities; electromechanical coupled heart model; mechanical activities; meshfree BEM method; static heart model; volumetric transmembrane potential maps; Biological system modeling; Computational modeling; Couplings; Electrocardiography; Heart; Mathematical model; Numerical models;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computing in Cardiology, 2011
Conference_Location :
Hangzhou
ISSN :
0276-6547
Print_ISBN :
978-1-4577-0612-7
Type :
conf
Filename :
6164543
Link To Document :
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