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On the performance investigation of a fast optical switches based optical high performance computing infrastructure

机译:基于快光开关的基于光学高性能计算基础设施的性能研究

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Optical networks based on fast optical switches (FOSes) could potentially solve the latency, bandwidth, cost and power consumption challenges in current electrical switches (ESes) based high performance computing (HPC) networks. In this work, we present a novel HPC network which employs distributed FOS interconnecting by removing ES (Firefly). In Firefly, Dragonfly topology is adopted for the inter-group connection of blades, while the intra-group connection of blades is implemented by FOS with fast optical flow control. The Firefly exploits the wavelength, space, and time switching domain with nanoseconds reconfiguration time of the FOS to achieve efficient statistical multiplexing operation. We numerically investigate the Firefly performance with real HPC traffic traces collected by running multiple computing applications in MareNostrum 3 HPC infrastructure with Leaf-Spine architecture. Compared with Leaf Spine architecture, results show that Firefly performs 62.4%, 54%, 68.6%, and 71.8% less latency for the applications Conjugate Gradient (CG), Multi Grid (MG), Multiple Instruction Lattice Computation (MILC), and Miniature Molecular Dynamics (MINI_MD), respectively. Moreover, Firefly can save 56.4% cost and 65.7% power consumption, respectively, with respect to Leaf-Spine when both support around 10,000 blades.
机译:基于快速光学开关(FOSE)的光网络可能潜在地解决基于电气开关(ESE)的高性能计算(HPC)网络的电流电源开关(ESE)的延迟,带宽,成本和功耗挑战。在这项工作中,我们提出了一种新颖的HPC网络,通过去除ES(FiREF)来使用分布式FOS互连。在萤火虫中,采用蜻蜓拓扑用于刀片的间间连接,而刀片内的组内连接由具有快速光学流量控制的FOS实现。萤火虫利用波长,空间和时间切换域,具有FOS的纳秒重新配置时间来实现有效的统计复用操作。通过使用叶子脊椎架构运行Marenostrum 3 HPC基础设施的多个计算应用程序来进行数值对萤火虫性能进行萤火虫性能。与叶脊柱架构相比,结果表明,萤火虫表现出应用共轭梯度(CG),多网格(MG),多个指令格计算(MILC)和微型延迟的62.4%,54%,68.6%和71.8%延迟。分子动力学(mini_md)。此外,萤火虫可以分别节省56.4%的成本和65.7%的功耗,当叶脊柱都有约10,000刀片时。

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