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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Performance of Hybrid Programming Models for Multiscale Cardiac Simulations: Preparing for Petascale Computation
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Performance of Hybrid Programming Models for Multiscale Cardiac Simulations: Preparing for Petascale Computation

机译:用于多尺度心脏仿真的混合编程模型的性能:为皮瓣计算做准备

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摘要

Future multiscale and multiphysics models that support research into human disease, translational medical science, and treatment can utilize the power of high-performance computing (HPC) systems. We anticipate that computationally efficient multiscale models will require the use of sophisticated hybrid programming models, mixing distributed message-passing processes [e.g., the message-passing interface (MPI)] with multithreading (e.g., OpenMP, Pthreads). The objective of this study is to compare the performance of such hybrid programming models when applied to the simulation of a realistic physiological multiscale model of the heart. Our results show that the hybrid models perform favorably when compared to an implementation using only the MPI and, furthermore, that OpenMP in combination with the MPI provides a satisfactory compromise between performance and code complexity. Having the ability to use threads within MPI processes enables the sophisticated use of all processor cores for both computation and communication phases. Considering that HPC systems in 2012 will have two orders of magnitude more cores than what was used in this study, we believe that faster than real-time multiscale cardiac simulations can be achieved on these systems.
机译:支持人类疾病,转化医学和治疗研究的未来多尺度和多物理场模型可以利用高性能计算(HPC)系统的功能。我们预计计算效率高的多尺度模型将需要使用复杂的混合编程模型,将分布式消息传递过程[例如,消息传递接口(MPI)]与多线程(例如OpenMP,Pthreads)混合在一起。这项研究的目的是比较这种混合编程模型在模拟现实的心脏生理多尺度模型时的性能。我们的结果表明,与仅使用MPI的实现相比,混合模型具有良好的性能,此外,OpenMP与MPI结合使用可在性能和代码复杂性之间取得令人满意的折衷。具有在MPI进程中使用线程的能力,可以在计算和通信阶段同时使用所有处理器内核。考虑到2012年HPC系统的核心将比本研究中使用的核心多两个数量级,因此我们认为,在这些系统上可以实现比实时多尺度心脏仿真更快的速度。

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