Literature DB >> 22692867

Accelerating cardiac bidomain simulations using graphics processing units.

A Neic1, M Liebmann, E Hoetzl, L Mitchell, E J Vigmond, G Haase, G Plank.   

Abstract

Anatomically realistic and biophysically detailed multiscale computer models of the heart are playing an increasingly important role in advancing our understanding of integrated cardiac function in health and disease. Such detailed simulations, however, are computationally vastly demanding, which is a limiting factor for a wider adoption of in-silico modeling. While current trends in high-performance computing (HPC) hardware promise to alleviate this problem, exploiting the potential of such architectures remains challenging since strongly scalable algorithms are necessitated to reduce execution times. Alternatively, acceleration technologies such as graphics processing units (GPUs) are being considered. While the potential of GPUs has been demonstrated in various applications, benefits in the context of bidomain simulations where large sparse linear systems have to be solved in parallel with advanced numerical techniques are less clear. In this study, the feasibility of multi-GPU bidomain simulations is demonstrated by running strong scalability benchmarks using a state-of-the-art model of rabbit ventricles. The model is spatially discretized using the finite element methods (FEM) on fully unstructured grids. The GPU code is directly derived from a large pre-existing code, the Cardiac Arrhythmia Research Package (CARP), with very minor perturbation of the code base. Overall, bidomain simulations were sped up by a factor of 11.8 to 16.3 in benchmarks running on 6-20 GPUs compared to the same number of CPU cores. To match the fastest GPU simulation which engaged 20 GPUs, 476 CPU cores were required on a national supercomputing facility.

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Year:  2012        PMID: 22692867      PMCID: PMC3696513          DOI: 10.1109/TBME.2012.2202661

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  17 in total

1.  Parallel multigrid preconditioner for the cardiac bidomain model.

Authors:  Rodrigo Weber dos Santos; Gernot Plank; Steffen Bauer; Edward J Vigmond
Journal:  IEEE Trans Biomed Eng       Date:  2004-11       Impact factor: 4.538

2.  A comparison of monodomain and bidomain reaction-diffusion models for action potential propagation in the human heart.

Authors:  Mark Potse; Bruno Dubé; Jacques Richer; Alain Vinet; Ramesh M Gulrajani
Journal:  IEEE Trans Biomed Eng       Date:  2006-12       Impact factor: 4.538

3.  A model of the ventricular cardiac action potential. Depolarization, repolarization, and their interaction.

Authors:  C H Luo; Y Rudy
Journal:  Circ Res       Date:  1991-06       Impact factor: 17.367

4.  A rabbit ventricular action potential model replicating cardiac dynamics at rapid heart rates.

Authors:  Aman Mahajan; Yohannes Shiferaw; Daisuke Sato; Ali Baher; Riccardo Olcese; Lai-Hua Xie; Ming-Jim Yang; Peng-Sheng Chen; Juan G Restrepo; Alain Karma; Alan Garfinkel; Zhilin Qu; James N Weiss
Journal:  Biophys J       Date:  2008-01-15       Impact factor: 4.033

5.  A practical algorithm for solving dynamic membrane equations.

Authors:  S Rush; H Larsen
Journal:  IEEE Trans Biomed Eng       Date:  1978-07       Impact factor: 4.538

6.  Near-real-time simulations of biolelectric activity in small mammalian hearts using graphical processing units.

Authors:  Edward J Vigmond; Patrick M Boyle; L Leon; Gernot Plank
Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2009

Review 7.  From mitochondrial ion channels to arrhythmias in the heart: computational techniques to bridge the spatio-temporal scales.

Authors:  Gernot Plank; Lufang Zhou; Joseph L Greenstein; Sonia Cortassa; Raimond L Winslow; Brian O'Rourke; Natalia A Trayanova
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2008-09-28       Impact factor: 4.226

8.  Generation of histo-anatomically representative models of the individual heart: tools and application.

Authors:  Gernot Plank; Rebecca A B Burton; Patrick Hales; Martin Bishop; Tahir Mansoori; Miguel O Bernabeu; Alan Garny; Anton J Prassl; Christian Bollensdorff; Fleur Mason; Fahd Mahmood; Blanca Rodriguez; Vicente Grau; Jürgen E Schneider; David Gavaghan; Peter Kohl
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2009-06-13       Impact factor: 4.226

9.  Simulating human cardiac electrophysiology on clinical time-scales.

Authors:  Steven Niederer; Lawrence Mitchell; Nicolas Smith; Gernot Plank
Journal:  Front Physiol       Date:  2011-04-09       Impact factor: 4.566

10.  Development of an anatomically detailed MRI-derived rabbit ventricular model and assessment of its impact on simulations of electrophysiological function.

Authors:  Martin J Bishop; Gernot Plank; Rebecca A B Burton; Jürgen E Schneider; David J Gavaghan; Vicente Grau; Peter Kohl
Journal:  Am J Physiol Heart Circ Physiol       Date:  2009-11-20       Impact factor: 4.733

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  20 in total

Review 1.  Deranged sodium to sudden death.

Authors:  Colleen E Clancy; Ye Chen-Izu; Donald M Bers; Luiz Belardinelli; Penelope A Boyden; Laszlo Csernoch; Sanda Despa; Bernard Fermini; Livia C Hool; Leighton Izu; Robert S Kass; W Jonathan Lederer; William E Louch; Christoph Maack; Alicia Matiazzi; Zhilin Qu; Sridharan Rajamani; Crystal M Rippinger; Ole M Sejersted; Brian O'Rourke; James N Weiss; András Varró; Antonio Zaza
Journal:  J Physiol       Date:  2015-03-15       Impact factor: 5.182

2.  Towards a Computational Framework for Modeling the Impact of Aortic Coarctations Upon Left Ventricular Load.

Authors:  Elias Karabelas; Matthias A F Gsell; Christoph M Augustin; Laura Marx; Aurel Neic; Anton J Prassl; Leonid Goubergrits; Titus Kuehne; Gernot Plank
Journal:  Front Physiol       Date:  2018-05-28       Impact factor: 4.566

3.  Simulating the Mechanics of Myocardial Tissue Using Strongly Scalable Parallel Algorithms.

Authors:  Christoph M Augustin; Gernot Plank
Journal:  Biomed Tech (Berl)       Date:  2013-09-07       Impact factor: 1.411

4.  OpenCOR: a modular and interoperable approach to computational biology.

Authors:  Alan Garny; Peter J Hunter
Journal:  Front Physiol       Date:  2015-02-06       Impact factor: 4.566

5.  Toward GPGPU accelerated human electromechanical cardiac simulations.

Authors:  Guillermo Vigueras; Ishani Roy; Andrew Cookson; Jack Lee; Nicolas Smith; David Nordsletten
Journal:  Int J Numer Method Biomed Eng       Date:  2013-09-20       Impact factor: 2.747

6.  Anatomically accurate high resolution modeling of human whole heart electromechanics: A strongly scalable algebraic multigrid solver method for nonlinear deformation.

Authors:  Christoph M Augustin; Aurel Neic; Manfred Liebmann; Anton J Prassl; Steven A Niederer; Gundolf Haase; Gernot Plank
Journal:  J Comput Phys       Date:  2016-01-15       Impact factor: 3.553

7.  An efficient finite element approach for modeling fibrotic clefts in the heart.

Authors:  Caroline Mendonca Costa; Fernando O Campos; Anton J Prassl; Rodrigo Weber dos Santos; Damián Sánchez-Quintana; Helmut Ahammer; Ernst Hofer; Gernot Plank
Journal:  IEEE Trans Biomed Eng       Date:  2014-03       Impact factor: 4.538

8.  Simulations of complex and microscopic models of cardiac electrophysiology powered by multi-GPU platforms.

Authors:  Bruno Gouvêa de Barros; Rafael Sachetto Oliveira; Wagner Meira; Marcelo Lobosco; Rodrigo Weber dos Santos
Journal:  Comput Math Methods Med       Date:  2012-11-25       Impact factor: 2.238

9.  Parallel Optimization of 3D Cardiac Electrophysiological Model Using GPU.

Authors:  Yong Xia; Kuanquan Wang; Henggui Zhang
Journal:  Comput Math Methods Med       Date:  2015-10-25       Impact factor: 2.238

10.  Fast acceleration of 2D wave propagation simulations using modern computational accelerators.

Authors:  Wei Wang; Lifan Xu; John Cavazos; Howie H Huang; Matthew Kay
Journal:  PLoS One       Date:  2014-01-30       Impact factor: 3.240

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