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Performance portability study for massively parallel computational fluid dynamics application on scalable heterogeneous architectures

机译:稳定异构架构大型平行计算流体动力学应用的性能搬运研究

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Patient-specific hemodynamic simulations have the potential to greatly improve both the diagnosis and treatment of a variety of vascular diseases. Portability will enable wider adoption of computational fluid dynamics (CFD) applications in the biomedical research community and targeting to platforms ideally suited to different vascular regions. In this work, we present a case study in performance portability that assesses (1) the ease of porting an MPI application optimized for one specific architecture to new platforms using variants of hybrid MPI+X programming models; (2) performance portability seen when simulating blood flow in three different vascular regions on diverse heterogeneous architectures; (3) model-based performance prediction for future architectures; and (4) performance scaling of the hybrid MPI+X programming on parallel heterogeneous systems. We discuss the lessons learned in porting HARVEY, a massively parallel CFD application, from traditional multicore CPUs to diverse heterogeneous architectures ranging from NVIDIA/AMD GPUs to Intel MICs and Altera FPGAs. (C) 2019 Elsevier Inc. All rights reserved.
机译:患者特异性血液动力学模拟有可能大大改善各种血管疾病的诊断和治疗。可移植性将在生物医学研究界中更广泛地采用计算流体动力学(CFD)应用,并针对理想地适合不同血管区域的平台。在这项工作中,我们在使用混合MPI + X编程模型的变体进行了评估(1)易于移植到新平台的易于评估(1)的案例研究。 (2)在不同异构架构上模拟三种不同血管区域中的血流时所见的性能便携性; (3)基于模型的未来架构的性能预测; (4)平行异构系统上混合MPI + X编程的性能缩放。我们讨论了哈维,这是一个大规模并行CFD应用程序中的经验教训,从传统的多核CPU到多样化的异构架构,从NVIDIA / AMD GPU到英特尔MICS和Altera FPGA。 (c)2019 Elsevier Inc.保留所有权利。

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