多即是少,少即是多:分子尺度光子NoC功率拓扑

Jun Pang, C. Dwyer, A. Lebeck
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引用次数: 8

摘要

分子级片上网络(mNoC)交叉棒使用量子点led作为片上光源,并使用发色团为接收器提供光信号滤波。与目前的纳米光子NoC交叉棒相比,mNoC可以降低功耗,或者可以扩展到更大的交叉棒,从而减少能量预算。由于使用高基数交叉杆可以减少通信延迟,因此最小化功耗成为主要的设计目标。传统的单写多读(SWMR)光子交叉条设计广播所有数据包,并产生相应的所需功率,即使只有两个节点在通信。本文介绍了通过mNoC技术的独特功能实现的功率拓扑结构,以降低整体互连功耗。电源拓扑与给定电源模式提供的逻辑连通性相对应。广播是其中一种供电方式,且功耗最大。额外的功率模式消耗更少的功率,但允许源仅与静态定义的、可能不连续的节点子集进行通信。如果通信频率较高的节点使用功耗较低的模式,而通信频率较低的节点使用功耗较高的模式,则可以降低整体互连功耗。我们还研究了线程映射技术,以充分利用电源拓扑。我们探索了基数为256的SWMR mNoC交叉棒的一、二和四种功率模式的各种mNoC功率拓扑。我们的研究结果表明,对于一组12个SPLASH基准测试,功耗拓扑和智能线程映射的组合可以将mNoC总功耗平均降低51%。此外,性能比传统的基于谐振腔的光子noc提高10%,能量降低72%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
More is Less, Less is More: Molecular-Scale Photonic NoC Power Topologies
Molecular-scale Network-on-Chip (mNoC) crossbars use quantum dot LEDs as an on-chip light source, and chromophores to provide optical signal filtering for receivers. An mNoC reduces power consumption or enables scaling to larger crossbars for a reduced energy budget compared to current nanophotonic NoC crossbars. Since communication latency is reduced by using a high-radix crossbar, minimizing power consumption becomes a primary design target. Conventional Single Writer Multiple Reader (SWMR) photonic crossbar designs broadcast all packets, and incur the commensurate required power, even if only two nodes are communicating. This paper introduces power topologies, enabled by unique capabilities of mNoC technology, to reduce overall interconnect power consumption. A power topology corresponds to the logical connectivity provided by a given power mode. Broadcast is one power mode and it consumes the maximum power. Additional power modes consume less power but allow a source to communicate with only a statically defined, potentially non-contiguous, subset of nodes. Overall interconnect power is reduced if the more frequently communicating nodes use modes that consume less power, while less frequently communicating nodes use modes that consume more power. We also investigate thread mapping techniques to fully exploit power topologies. We explore various mNoC power topologies with one, two and four power modes for a radix-256 SWMR mNoC crossbar. Our results show that the combination of power topologies and intelligent thread mapping can reduce total mNoC power by up to 51% on average for a set of 12 SPLASH benchmarks. Furthermore performance is 10% better than conventional resonator-based photonic NoCs and energy is reduced by 72%.
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