DocumentCode :
776300
Title :
Reduced-Order Preconditioning for Bidomain Simulations
Author :
Deo, M. ; Bauer, S. ; Plank, G. ; Vigmond, E.
Author_Institution :
Dept. of Electr. & Comput. Eng., Calgary Univ., Alta.
Volume :
54
Issue :
5
fYear :
2007
fDate :
5/1/2007 12:00:00 AM
Firstpage :
938
Lastpage :
942
Abstract :
Simulations of the bidomain equations involve solving large, sparse, linear systems of the form Ax=b. Being an initial value problems, it is solved at every time step. Therefore, efficient solvers are essential to keep simulations tractable. Iterative solvers, especially the preconditioned conjugate gradient (PCG) method, are attractive since memory demands are minimized compared to direct methods, albeit at the cost of solution speed. However, a proper preconditioner can drastically speed up the solution process by reducing the number of iterations. In this paper, a novel preconditioner for the PCG method based on system order reduction using the Arnoldi method (A-PCG) is proposed. Large order systems, generated during cardiac bidomain simulations employing a finite element method formulation, are solved with the A-PCG method. Its performance is compared with incomplete LU (ILU) preconditioning. Results indicate that the A-PCG estimates an approximate solution considerably faster than the ILU, often within a single iteration. To reduce the computational demands in terms of memory and run time, the use of a cascaded preconditioner was suggested. The A-PCG was applied to quickly obtain an approximate solution, and subsequently a cheap iterative method such as successive overrelaxation (SOR) is applied to further refine the solution to arrive at a desired accuracy. The memory requirements are less than those of direct LU but more than ILU method. The proposed scheme is shown to yield significant speedups when solving time evolving systems
Keywords :
bioelectric potentials; cardiology; conjugate gradient methods; finite element analysis; initial value problems; Arnoldi method; bidomain simulations; cardiac bidomain simulations; finite element method; incomplete LU preconditioning; iterations; iterative solver; large order systems; preconditioned conjugate gradient method; reduced-order preconditioning; successive overrelaxation; time evolving systems; Character generation; Computational modeling; Costs; Councils; Extracellular; Finite element methods; Iterative methods; Linear systems; Partial differential equations; Sparse matrices; Bidomain; cardiac simulations; preconditioning; Algorithms; Computer Simulation; Electric Capacitance; Electric Stimulation; Electrophysiology; Finite Element Analysis; Heart Conduction System; Humans; Models, Cardiovascular; Nonlinear Dynamics; Numerical Analysis, Computer-Assisted; Reproducibility of Results; Software; Ventricular Function;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2006.889203
Filename :
4154992
Link To Document :
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