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Toward GPGPU accelerated human electromechanical cardiac simulations

机译:迈向GPGPU加速人体机电心脏仿真

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摘要

In this paper, we look at the acceleration of weakly coupled electromechanics using the graphics processing unit (GPU). Specifically, we port to the GPU a number of components of Heart—a CPU-based finite element code developed for simulating multi-physics problems. On the basis of a criterion of computational cost, we implemented on the GPU the ODE and PDE solution steps for the electrophysiology problem and the Jacobian and residual evaluation for the mechanics problem. Performance of the GPU implementation is then compared with single core CPU (SC) execution as well as multi-core CPU (MC) computations with equivalent theoretical performance. Results show that for a human scale left ventricle mesh, GPU acceleration of the electrophysiology problem provided speedups of 164 × compared with SC and 5.5 times compared with MC for the solution of the ODE model. Speedup of up to 72 × compared with SC and 2.6 × compared with MC was also observed for the PDE solve. Using the same human geometry, the GPU implementation of mechanics residual/Jacobian computation provided speedups of up to 44 × compared with SC and 2.0 × compared with MC. © 2013 The Authors. International Journal for Numerical Methods in Biomedical Engineering published by John Wiley & Sons, Ltd.
机译:在本文中,我们着眼于使用图形处理单元(GPU)的弱耦合机电的加速。具体来说,我们将Heart的许多组件移植到GPU上-Heart是为模拟多物理场问题而开发的基于CPU的有限元代码。基于计算成本的准则,我们在GPU上实现了针对电生理问题的ODE和PDE解决步骤以及针对力学问题的雅可比和残差评估。然后将GPU实现的性能与具有等效理论性能的单核CPU(SC)执行以及多核CPU(MC)计算进行比较。结果表明,对于人类规模的左心室网格,电生理问题的GPU加速提供了164×的加速,而SC则为5.5倍,而SC则为MC的5.5倍。对于PDE求解,与SC相比,加速比达到72×,与MC相比,加速比达到2.6×。使用相同的人类几何体,机械残差/雅可比计算的GPU实现提供了与SC相比最高44×和与MC相比2.0×的加速。 ©2013作者。 John Wiley&Sons,Ltd.出版的《国际生物医学工程数值方法杂志》。

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