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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Accelerating All-Atom Normal Mode Analysis with Graphics Processing Unit
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Accelerating All-Atom Normal Mode Analysis with Graphics Processing Unit

机译:使用图形处理单元加速全原子正常模式分析

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摘要

All-atom normal mode analysis (NMA) is an efficient way to predict the collective motions in a given macromolecule, which is essential for the understanding of protein biological function and drug design. However, the calculations are limited in time scale mainly because the required diagonalization of the Hessian matrix by Householder-QR transformation is a computationally exhausting task. In this paper, we demonstrate the parallel computing power of the graphics processing unit (GPU) in NMA by mapping Householder-QR transformation onto GPU using Compute Unified Device Architecture (CUDA). The results revealed that the GPU-accelerated all-atom NMA could reduce the runtime of diagonalization significantly and achieved over 20 x speedup over CPU-based NMA In addition, we analyzed the influence of precision on both the performance and the accuracy of GPU. Although the performance of GPU with double precision is weaker than that with single precision in theory, more accurate results and an acceptable speedup of double precision were obtained in our approach by reducing the data transfer time to a minimum. Finally, the inherent drawbacks of GPU and the corresponding solution to deal with the limitation in computational scale are also discussed in this study.
机译:全原子正常模式分析(NMA)是预测给定大分子中集体运动的有效方法,这对于理解蛋白质生物学功能和药物设计至关重要。但是,计算的时标受到限制,主要是因为Householderer-QR变换所需的Hessian矩阵对角线化是一项计算量大的工作。在本文中,我们通过使用Compute Unified Device Architecture(CUDA)将Householder-QR变换映射到GPU上,展示了NMA中图形处理单元(GPU)的并行计算能力。结果表明,GPU加速的全原子NMA可以显着减少对角化的运行时间,并且与基于CPU的NMA相比可实现20倍的加速。此外,我们还分析了精度对GPU性能和精度的影响。尽管从理论上讲,双精度GPU的性能比单精度GPU的性能要弱,但是通过将数据传输时间减至最少,我们的方法获得了更准确的结果和可接受的双精度加速。最后,本文还讨论了GPU的固有缺点以及解决计算规模限制的相应解决方案。

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