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Assessing the Impact of Network Compression on Molecular Dynamics and Finite Element Methods

机译:评估网络压缩对分子动力学和有限元方法的影响

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Efficient communication in parallel applications is one of the main challenges for the scalability of supercomputers, both in weak and strong scaling environments. In the past, several compression techniques have been proposed as a way to improve the performance and scalability of parallel applications. Those works have shown significant speed-ups when applying compressors to the MPI transfers of certain algorithmic kernels. However, these techniques have not seen widespread adoption in current supercomputers. This paper evaluates the bottlenecks of network compression that have precluded their generalized adoption in HPC environments. In order to evaluate their impact on real applications we integrated multiple MPI compression schemes into two production applications: a computational mechanics code dominated by point-to-point communication, and a molecular dynamics code dominated by collective communications. While the applications observe some improvements when applying aggressive lossy compression schemes on systems ranging from 4 to 256 processors, the overall results seem to contradict earlier research. We conclude that HPC data traffic tends to be too statistically random to be captured by general lossless compressors, and that the size of MPI message is most often not the limiting component of these communication-bound applications. We also observed that aggressive lossy compression worked well and did not distort the results of the evaluated applications. This suggests that reducing network bandwidth in conjunction with message compression may be an interesting technique to increase energy efficiency in HPC systems.
机译:并行应用中的高效通信是超级计算机可扩展性的主要挑战之一,无论是弱和强大的缩放环境。过去,已经提出了几种压缩技术作为提高并行应用的性能和可扩展性的方法。当将压缩机应用于某些算法内核的MPI传输时,这些工作显示出显着的速度。然而,这些技术在目前的超级计算机中没有看到广泛的采用。本文评估了网络压缩的瓶颈,妨碍了其在HPC环境中的广义采用。为了评估它们对真实应用的影响,我们将多个MPI压缩方案集成为两个生产应用:由点对点通信主导的计算力学代码,以及由集体通信主导的分子动力学代码。虽然应用程序在从4到256个处理器的系统上应用侵略性的损耗压缩方案时,遵守一些改进,但总体结果似乎与早期的研究相矛盾。我们得出结论,HPC数据流量往往太统计而无法被一般无损压缩机捕获,并且MPI消息的大小最常不是这些通信应用程序的限制组件。我们还观察到侵略性的损坏压缩效果良好,并未扭曲评估应用的结果。这表明,结合消息压缩减少网络带宽可以是一种有趣的技术,以提高HPC系统中的能量效率。

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