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Augmenting low-latency HPC network with free-space optical links

机译:通过自由空间光链路增强低延迟HPC网络

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Various network topologies can be used for deploying High Performance Computing (HPC) clusters. The network topology, which connects switches In cabinets on a machine room floor, is typically defined once and for all at system deployment time. For a diverse application workload, there are downsides to having a single wired topology. In this work, we propose using free-space optics (FSO) in large-scale systems so that a diverse application workload can be better supported. A high-density layout of FSO terminals on top of the cabinets is determined that allows line-of-sight communication between arbitrary cabinet pairs. We first show that our proposal reduces both end-to-end network latency and total cable length when compared to a wired topology. We then demonstrate that the use of FSO links improves the embedding/partitioning capabilities of a wired topology. More specifically, we show that a recently proposed random low-latency topology can be augmented with a reasonable number of FSO links to support multiple k-ary n-cube and fat tree embedded topologies. Finally, we investigate power-aware on/off link regulation techniques and show how adding/reconfiguring FSO links leads to both performance and power efficiency improvements.
机译:各种网络拓扑可用于部署高性能计算(HPC)群集。通常将在机房地板上的机柜中连接交换机的网络拓扑定义为一劳永逸。对于多样化的应用程序工作负载,具有单个有线拓扑存在不利之处。在这项工作中,我们建议在大型系统中使用自由空间光学(FSO),以便可以更好地支持各种应用程序工作负载。确定机柜顶部FSO端子的高密度布局,以允许任意机柜对之间的视线通信。我们首先表明,与有线拓扑相比,我们的建议减少了端到端网络延迟和总电缆长度。然后,我们证明FSO链接的使用可以改善有线拓扑的嵌入/分区功能。更具体地说,我们表明可以通过合理数量的FSO链接来增强最近提出的随机低延迟拓扑,以支持多个k元n立方体和胖树嵌入式拓扑。最后,我们研究了电源感知的开/关链路调节技术,并显示了添加/重新配置FSO链路如何导致性能和功率效率的提高。

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