A Hierarchical Hybrid Optical-Electronic Network-on-Chip

M. K. Hung, Yaoyao Ye, Xiaowen Wu, Wei Zhang, Weichen Liu, Jiang Xu
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引用次数: 74

Abstract

Network-on-chip (NoC) can improve the performance, power efficiency, and scalability of multiprocessor system-on-chip (MPSoC). However, traditional NoCs using metallic interconnects consume significant amount of power to deliver even higher communication bandwidth required in the near future. Optical NoCs are based on CMOS-compatible optical waveguides and micro resonators, and promise significant bandwidth and power advantages. In this paper, we propose a hybrid optical mesh NoC, HOME, which utilizes optical waveguides as well as metallic interconnects in a hierarchical manner. HOME employs a new set of protocols to improve the network throughput and latency. We compared HOME with a matched optical mesh NoC for a 64-core MPSoC in 45nm, using SPICE simulations and our cycle-accurate multi-objective NoC simulation platform, MoLab. Comparing with the optical mesh NoC, HOME uses 75% less optical/electronic interfaces and laser diodes. Simulation results show that HOME achieves 17% higher throughput and 40% less latency while consuming 42% less power.
一种分层混合光电子片上网络
片上网络(NoC)可以提高多处理器片上系统(MPSoC)的性能、能效和可扩展性。然而,在不久的将来,使用金属互连的传统noc需要消耗大量的功率来提供更高的通信带宽。光学noc基于cmos兼容的光波导和微谐振器,具有显著的带宽和功耗优势。在本文中,我们提出了一种混合光学网格NoC, HOME,它以分层的方式利用光波导和金属互连。HOME采用了一组新的协议来提高网络吞吐量和延迟。我们使用SPICE仿真和我们的周期精确多目标NoC仿真平台MoLab,将HOME与45纳米64核MPSoC的匹配光网格NoC进行了比较。与光网NoC相比,HOME使用的光/电子接口和激光二极管减少了75%。仿真结果表明,HOME的吞吐量提高了17%,延迟减少了40%,功耗降低了42%。
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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