Bandwidth Adaptive Nanophotonic Crossbars with Clockwise/Counter-clockwise Optical Routing

M. Kennedy, Avinash Karanth Kodi
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引用次数: 5

Abstract

Future processors are anticipated to have hundreds or even thousands of processing cores placed entirely on a single silicon chip. The increasing number of cores placed on a single chip presents new challenges, pushing researchers to explore opportunities in emerging technologies such as on-chip silicon nanophotonics. Implications of nanophotonic technology has created a unique landscape for new interconnect designs. Among the many architectures made possible by nanophotonics, there has been notable interest in crossbar topologies that were previously impractical using only electrical components. In this paper, we present a new nanophotonic crossbar interconnect architecture with the aim of retaining the low latency, single-hop characteristic of the crossbar topology, while also improving the networks utility of the static laser source which is often wasted to insertion losses and unused bandwidth. We compare our architecture design to other proposed architectures according to area, power consumption, throughput, and latency. Approximately a 13% improvement in throughput is achieved compared to other optical crossbar topologies and a 92% improvement is achieved compared to a conventional electrical flattened butterfly topology on synthetic traffic patterns.
顺/逆时针光路由的带宽自适应纳米光子交叉棒
未来的处理器预计将有数百甚至数千个处理核心完全放在一个硅芯片上。在单个芯片上放置越来越多的核心提出了新的挑战,促使研究人员探索诸如片上硅纳米光子学等新兴技术的机会。纳米光子技术的影响为新的互连设计创造了一个独特的景观。在许多由纳米光子学实现的结构中,交叉杆拓扑引起了人们的极大兴趣,这种拓扑以前只使用电子元件是不切实际的。在本文中,我们提出了一种新的纳米光子交叉条互连架构,旨在保留交叉条拓扑的低延迟,单跳特性,同时也提高了静态激光源的网络利用率,而静态激光源通常被浪费在插入损耗和未使用的带宽上。我们根据面积、功耗、吞吐量和延迟将我们的体系结构设计与其他提出的体系结构进行比较。与其他光学横杆拓扑相比,吞吐量提高了约13%,与传统的电子扁平蝶形拓扑相比,吞吐量提高了92%。
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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