Assessing the energy break-even point between an optical NoC architecture and an aggressive electronic baseline

L. Ramini, Alberto Ghiribaldi, P. Grani, S. Bartolini, H. Tatenguem, D. Bertozzi
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引用次数: 21

Abstract

Many crossbenchmarking results reported in the open literature raise optimistic expectations on the use of optical networks-on-chip (ONoCs) for high-performance and low-power on-chip communication. However, most of those previous works ultimately fail to make a compelling case for chip-level nanophotonic NoCs, especially for the lack of aggressive electronic baselines (ENoC), and the poor accuracy in physical- and architecture-layer analysis of the ONoC. This paper aims at providing the guidelines and minimum requirements so that nanophotonic emerging technology may become of practical relevance. The key differentiating factor of this work consists of contrasting ONoC solutions with an aggressive ENoC architecture with realistic complexity, performance, and power figures, synthesized on an industrial 40nm low-power technology. At the same time, key physical design issues and network interface architecture requirements for the ONoC under test are carefully assessed, thus paving the way for a well-grounded definition of the requirements for the emerging ONoC technology to achieve the energy break-even point with respect to pure electronic interconnect solutions in future multi- and many-core systems.
评估光学NoC架构和侵略性电子基线之间的能量盈亏平衡点
公开文献中报道的许多交叉基准测试结果对使用光网络片上(ONoCs)进行高性能和低功耗片上通信提出了乐观的期望。然而,大多数先前的工作最终未能对芯片级纳米光子noc提出令人信服的案例,特别是缺乏积极的电子基线(ENoC),以及ONoC的物理层和架构层分析的准确性较差。本文旨在为纳米光子新兴技术的实际应用提供指导和最低要求。这项工作的关键区别因素包括将ONoC解决方案与具有实际复杂性,性能和功耗数据的激进ENoC架构进行对比,这些数据是在工业40nm低功耗技术上合成的。同时,对正在测试的ONoC的关键物理设计问题和网络接口架构要求进行了仔细评估,从而为新兴ONoC技术的需求定义铺平了道路,以实现未来多核和多核系统中纯电子互连解决方案的能量盈亏平衡点。
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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