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On the effects of allocation strategies for exascale computing systems with distributed storage and unified interconnects

机译:关于具有分布式存储和统一互连的百亿亿次计算系统的分配策略的影响

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The convergence between computing- and data-centricworkloads and platforms is imposing new challenges on how to best use the resources of modern computing systems. In this paper, we investigate alternatives for the storage subsystem of a novel exascale-capable system with special emphasis on how allocation strategieswould affect the overall performance.We consider several aspects of data-aware allocation such as the effect of spatial and temporal locality, the affinity of data to storage sources, and the network-level traffic prioritization for different types of flows. In our experimental set-up, temporal locality can have a substantial effect on application runtime (up to a 10% reduction), whereas spatial locality can be even more significant (up to one order of magnitude faster with perfect locality). The use of structured access patterns to the data and the allocation of bandwidth at the network level can also have a significant impact (up to 20% and 17% reduction of runtime, respectively). These results suggest that scheduling policies exposing data-locality information can be essential for the appropriate utilization of future large-scale systems. Finally, we found that the distributed storage system we are implementing can outperform traditional SAN architectures, even with amuch smaller (in terms of I/Oservers) back-end.
机译:以计算为中心和以数据为中心的工作负载与平台之间的融合,对如何最佳利用现代计算系统的资源提出了新的挑战。在本文中,我们研究了新型Exascale系统的存储子系统的替代方案,特别着重于分配策略将如何影响整体性能。我们考虑了数据感知分配的几个方面,例如空间和时间局部性,数据对存储源的亲和力,以及针对不同类型流的网络级流量优先级。在我们的实验设置中,时间局部性可能会对应用程序运行时间产生实质性影响(最多减少10%),而空间局部性则可能更为重要(在完美局部性条件下,速度最多可以提高一个数量级)。在网络级别使用数据的结构化访问模式和带宽分配也会产生重大影响(分别将运行时间减少多达20%和17%)。这些结果表明,公开数据位置信息的调度策略对于适当利用未来的大型系统可能至关重要。最后,我们发现,即使后端要小得多(就I / O服务器而言),我们正在实施的分布式存储系统也可以胜过传统的SAN体系结构。

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