SLaC: Stage laser control for a flattened butterfly network

Y. Demir, N. Hardavellas
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引用次数: 21

Abstract

Photonic interconnects have emerged as a promising candidate technology for high-performance energy-efficient on-chip, on-board, and datacenter-scale interconnects. However, the high optical loss of many nanophotonic components coupled with the low efficiency of current laser sources result in exceedingly high total power requirements for the laser. As optical interconnects stay on even during periods of system inactivity, most of this power is wasted, which has prompted research on laser gating. Unfortunately, prior work on laser gating has only focused on low-scalability on-chip photonic interconnects (photonic crossbars), and disrupts the connectivity of the network which renders a high-performance implementation challenging. In this paper we propose SLaC, a laser gating technique that turns on and off redundant paths in a photonic flattened-butterfly network to save laser energy while maintaining high performance and full connectivity. Maintaining full connectivity removes the laser turn-on latency from the critical path and results in minimal performance degradation. SLaC is equally applicable to on-chip, on-board, and datacenter level interconnects. For on-chip and multi-chip applications, SLaC saves up to 67% of the laser energy (43-57% on average) when running real-world workloads. On a datacenter network, SLaC saves 79% of the laser energy on average when running traffic traces collected from university datacenter servers.
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平面蝴蝶网的阶段激光控制
光子互连已成为芯片上、板上和数据中心规模的高性能、高能效互连的一种有前途的候选技术。然而,许多纳米光子元件的高光学损耗加上当前激光源的低效率导致激光器的总功率要求过高。由于光互连即使在系统不活动期间也保持打开,因此大部分功率被浪费了,这促使了激光门控的研究。不幸的是,先前的激光门控工作只集中在低可扩展性的片上光子互连(光子交叉条)上,并且破坏了网络的连通性,这使得高性能实现具有挑战性。在本文中,我们提出了SLaC,一种激光门控技术,它可以打开和关闭光子平坦蝴蝶网络中的冗余路径,以节省激光能量,同时保持高性能和完全连接。保持完全连接可以消除关键路径上的激光开启延迟,并导致最小的性能下降。SLaC同样适用于片上、板上和数据中心级互连。对于片上和多芯片应用,在运行实际工作负载时,SLaC可节省高达67%的激光能量(平均43-57%)。在数据中心网络中,当运行从大学数据中心服务器收集的流量轨迹时,SLaC平均节省了79%的激光能量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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