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Molecular Dynamics Simulations on High-Performance Reconfigurable Computing Systems

机译:高性能可重构计算系统上的分子动力学模拟

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The acceleration of molecular dynamics (MD) simulations using high-performance reconfigurable computing (HPRC) has been much studied. Given the intense competition from multicore and GPUs, there is now a question whether MD on HPRC can be competitive. We concentrate here on the MD kernel computation: determining the short-range force between particle pairs. In one part of the study, we systematically explore the design space of the force pipeline with respect to arithmetic algorithm, arithmetic mode, precision, and various other optimizations. We examine simplifications and find that some have little effect on simulation quality. In the other part, we present the first FPGA study of the filtering of particle pairs with nearly zero mutual force, a standard optimization in MD codes. There are several innovations, including a novel partitioning of the particle space, and new methods for filtering and mapping work onto the pipelines. As a consequence, highly efficient filtering can be implemented with only a small fraction of the FPGA's resources. Overall, we find that, for an Altera Stratix-III EP3ES260, 8 force pipelines running at nearly 200 MHz can fit on the FPGA, and that they can perform at 95% efficiency. This results in an 80-fold per core speed-up for the short-range force, which is likely to make FPGAs highly competitive for MD.
机译:已经对使用高性能可重构计算(HPRC)的分子动力学(MD)模拟的加速进行了研究。鉴于来自多核和GPU的激烈竞争,现在存在一个问题,即HPRC上的MD是否具有竞争力。我们在这里集中于MD核计算:确定粒子对之间的短程力。在研究的一部分中,我们从算术算法,算术模式,精度和其他各种优化方面系统地探索了力管道的设计空间。我们研究了简化,发现其中一些对仿真质量影响很小。在另一部分中,我们提出了第一个FPGA研究,该研究以几乎为零的互作用力过滤粒子对,这是MD代码中的标准优化。有几项创新,包括对粒子空间的新颖划分,以及用于对管道进行过滤和映射的新方法。因此,仅使用FPGA资源的一小部分即可实现高效过滤。总体而言,我们发现,对于Altera Stratix-III EP3ES260,运行在接近200 MHz的8条强制管线可以在FPGA上安装,并且它们的效率可以达到95%。这样就可以使短程力每内核的速度提高80倍,这很可能使FPGA在MD方面具有很高的竞争力。

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