FlexiShare: Channel sharing for an energy-efficient nanophotonic crossbar

Yan Pan, John Kim, G. Memik
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引用次数: 8

Abstract

On-chip network is becoming critical to the scalability of future many-core architectures. Recently, nanophotonics has been proposed for on-chip networks because of its low latency and high bandwidth. However, nanophotonics has relatively high static power consumption, which can lead to inefficient architectures. In this work, we propose FlexiShare — a nanopho-tonic crossbar architecture that minimizes static power consumption by fully sharing a reduced number of channels across the network. To enable efficient global sharing, we decouple the allocation of the channels and the buffers, and introduce novel photonic token-stream mechanism for channel arbitration and credit distribution The flexibility of FlexiShare introduces additional router complexity and electrical power consumption. However, with the reduced number of optical channels, the overall power consumption is reduced without loss in performance. Our evaluation shows that the proposed token-stream arbitration applied to a conventional crossbar design improves network throughput by 5.5× under permutation traffic. In addition, FlexiShare achieves similar performance as a token-stream arbitrated conventional crossbar using only half the amount of channels under balanced, distributed traffic. With the extracted trace traffic from MineBench and SPLASH-2, FlexiShare can further reduce the amount of channels by up to 87.5%, while still providing better performance — resulting in up to 72% reduction in power consumption compared to the best alternative.
FlexiShare:用于节能纳米光子交叉棒的通道共享
片上网络对未来多核体系结构的可扩展性至关重要。近年来,纳米光子学因其低延迟和高带宽而被提出用于片上网络。然而,纳米光子学具有相对较高的静态功耗,这可能导致低效的架构。在这项工作中,我们提出了FlexiShare——一种纳米光子交叉棒架构,通过在网络上完全共享减少的通道数量来最大限度地减少静态功耗。为了实现高效的全局共享,我们解耦了通道和缓冲区的分配,并引入了用于通道仲裁和信用分配的新型光子令牌流机制。FlexiShare的灵活性引入了额外的路由器复杂性和功耗。然而,随着光通道数量的减少,在不损失性能的情况下降低了总体功耗。我们的评估表明,提议的令牌流仲裁应用于传统的交叉条设计,在排列流量下将网络吞吐量提高了5.5倍。此外,FlexiShare实现了与令牌流仲裁的传统交叉条类似的性能,在均衡的分布式流量下,仅使用一半的通道。利用从MineBench和SPLASH-2中提取的跟踪流量,FlexiShare可以进一步减少多达87.5%的通道数量,同时仍然提供更好的性能-与最佳替代方案相比,可减少高达72%的功耗。
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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