WRH-ONoC: A wavelength-reused hierarchical architecture for optical Network on Chips

Feiyang Liu, Haibo Zhang, Yawen Chen, Zhiyi Huang, Huaxi Gu
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引用次数: 12

Abstract

Optical Network on Chip (ONoC) is a promising technology for the next-generation many-core chip multiprocessors owing to its tremendous advantages in low power consumption, low communication delay, and high bandwidth. In this paper we present WRH-ONoC, a novel wavelength-reused hierarchical architecture that is capable of interconnecting thousands of cores using a limited number of wavelengths while providing extremely high-throughput data communication between connected cores. In WRH-ONoC, the cores are divided into small subsystems that are interconnected using multiple λ-routers and gateways in a hierarchical manner. Each λ-router can provide non-blocking parallel communication among the directly connected cores or gateways, and all λ-routers can reuse the limited number of available wavelengths. Communications between cores in different subsystems are routed via gateways in which optical signals can change their wavelengths via optical-electrical signal conversions. For a given number of cores, we give the minimum number of levels, λ-routers, and gateways required to interconnect these cores, and derive the expected end-to-end data communication delay under the Uniform-Poisson traffic pattern. Both theoretical analysis and simulation results demonstrate that WRH-ONoC can achieve significant improvement on performance and reduction on hardware cost in comparison with the existing solutions.
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WRH-ONoC:一种波长复用的片上光网络分层架构
光片上网络(ONoC)以其低功耗、低通信延迟和高带宽等优点,成为下一代多核芯片多处理器的发展方向。在本文中,我们提出了WRH-ONoC,这是一种新颖的波长重用分层架构,能够使用有限数量的波长互连数千个核心,同时在连接的核心之间提供极高吞吐量的数据通信。在WRH-ONoC中,核心被分成小的子系统,这些子系统使用多个λ路由器和网关以分层方式互连。每个λ路由器都可以在直接连接的核心或网关之间提供无阻塞并行通信,并且所有λ路由器都可以重用有限数量的可用波长。不同子系统核心之间的通信通过网关路由,其中光信号可以通过光电信号转换改变其波长。对于给定数量的核心,我们给出了互连这些核心所需的最小级别,λ路由器和网关数量,并推导出均匀泊松流量模式下预期的端到端数据通信延迟。理论分析和仿真结果表明,与现有方案相比,WRH-ONoC方案在性能和硬件成本方面都有显著提高。
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