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首页> 外文期刊>International Journal of High Performance Computing Applications >PERFORMANCE MODELS ON QCDOC FOR MOLECULAR DYNAMICS WITH COULOMB POTENTIALS
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PERFORMANCE MODELS ON QCDOC FOR MOLECULAR DYNAMICS WITH COULOMB POTENTIALS

机译:具有库仑势的分子动力学在QCDOC上的性能模型

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We estimate that a novel architecture massively parallel computer, the QCDOC, can integrate molecular dynamics equations for 10~5 particles interacting via long-range forces (including Coulomb) for 1-10 μs of simulated time using several weeks of computing time using 8000 or 10,000 processors. This number of atoms is typical for biological molecules. The two main conclusions we reach are as follows. (1) This is an increase of more than one order of magnitude in simulated time over current simulations. (2) The novel architecture, with 24 parallel channels of low latency communication per processor, allows improved long-range communication and an unusual degree of fine-scale parallelism, compared to conventional switch-based architectures. The technical heart of the paper is a detailed analysis of the computing time used in the Ewald method as a function of the required accuracy, the size of the molecular dynamics cell, and the hardware design parameters.
机译:我们估计,新型架构的大规模并行计算机QCDOC可以集成分子动力学方程,用于通过远程力(包括库仑)相互作用的10〜5个粒子在1-10μs的模拟时间内使用8000或8000个星期的计算时间10,000个处理器。该原子数对于生物分子是典型的。我们得出的两个主要结论如下。 (1)与当前的仿真相比,仿真时间增加了一个数量级以上。 (2)与传统的基于交换机的体系结构相比,这种新颖的体系结构具有每个处理器24个低延迟通信的并行通道,可以改善远程通信,并具有不同寻常的精细并行度。本文的技术重点是根据所需的精度,分子动力学单元的大小以及硬件设计参数对Ewald方法中使用的计算时间进行详细分析。

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