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Photonic Networks-on-Chip for Future Generations of Chip Multiprocessors

机译:下一代芯片多处理器的片上光子网络

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摘要

The design and performance of next-generation chip multiprocessors (CMPs) will be bound by the limited amount of power that can be dissipated on a single die. We present photonic networks-on-chip (NoC) as a solution to reduce the impact of intra-chip and off-chip communication on the overall power budget. A photonic interconnection network can deliver higher bandwidth and lower latencies with significantly lower power dissipation. We explain why on-chip photonic communication has recently become a feasible opportunity and explore the challenges that need to be addressed to realize its implementation. We introduce a novel hybrid micro-architecture for NoCs combining a broadband photonic circuit-switched network with an electronic overlay packet-switched control network. We address the critical design issues including: topology, routing algorithms, deadlock avoidance, and path-setup/tear-down procedures. We present experimental results obtained with POINTS, an event-driven simulator specifically developed to analyze the proposed idea, as well as a comparative power analysis of a photonic versus an electronic NoC. Overall, these results confirm the unique benefits for future generations of CMPs that can be achieved by bringing optics into the chip in the form of photonic NoCs.
机译:下一代芯片多处理器(CMP)的设计和性能将受到可在单个芯片上消耗的有限功率的限制。我们提出了片上光子网络(NoC)作为解决方案,以减少芯片内和芯片外通信对总体功率预算的影响。光子互连网络可以提供更高的带宽和更低的延迟,同时功耗也大大降低。我们将解释为什么片上光子通信最近已成为可行的机会,并探讨了实现其实现所需要解决的挑战。我们为NoC引入了一种新型的混合微体系结构,将宽带光子电路交换网络与电子覆盖分组交换控制网络相结合。我们解决了关键的设计问题,包括:拓扑,路由算法,避免死锁以及路径设置/拆卸程序。我们介绍了使用POINTS(一种事件驱动的模拟器,专门开发来分析所提出的想法)获得的实验结果,以及光子与电子NoC的比较功率分析。总体而言,这些结果证实了通过将光学器件以光子NoC的形式引入芯片,可以实现下一代CMP的独特优势。

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