首页> 外文期刊>Journal of Computational Chemistry: Organic, Inorganic, Physical, Biological >Performance of heterogeneous computing with graphics processing unit and many integrated core for hartree potential calculations on a numerical grid
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Performance of heterogeneous computing with graphics processing unit and many integrated core for hartree potential calculations on a numerical grid

机译:具有图形处理单元和许多集成核的异构计算的性能,可在数字网格上计算无穷潜力

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We investigated the performance of heterogeneous computing with graphics processing units (GPUs) and many integrated core (MIC) with 20 CPU cores (20xCPU). As a practical example toward large scale electronic structure calculations using grid-based methods, we evaluated the Hartree potentials of silver nanoparticles with various sizes (3.1, 3.7, 4.9, 6.1, and 6.9 nm) via a direct integral method supported by the sinc basis set. The so-called work stealing scheduler was used for efficient heterogeneous computing via the balanced dynamic distribution of workloads between all processors on a given architecture without any prior information on their individual performances. 20xCPU+1GPU was up to approximate to 1.5 and approximate to 3.1 times faster than 1GPU and 20xCPU, respectively. 20xCPU+2GPU was approximate to 4.3 times faster than 20xCPU. The performance enhancement by CPU+MIC was considerably lower than expected because of the large initialization overhead of MIC, although its theoretical performance is similar with that of CPU+GPU. (c) 2016 Wiley Periodicals, Inc.
机译:我们研究了具有图形处理单元(GPU)和具有20个CPU内核(20xCPU)的许多集成内核(MIC)的异构计算的性能。作为使用基于网格的方法进行大规模电子结构计算的实际示例,我们通过sinc支持的直接积分方法评估了各种尺寸(3.1、3.7、4.9、6.1和6.9 nm)的银纳米粒子的Hartree势组。所谓的工作窃取调度程序通过给定体系结构上所有处理器之间的工作负载平衡动态分配而用于高效的异构计算,而无需事先了解其各自的性能。 20xCPU + 1GPU分别比1GPU和20xCPU快1.5倍和3.1倍。 20xCPU + 2GPU大约比20xCPU快4.3倍。尽管MIC的理论性能与CPU + GPU相似,但由于MIC的初始化开销很大,因此CPU + MIC的性能增强明显低于预期。 (c)2016年威利期刊有限公司

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