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Handshake and Circulation Flow Control in Nanaphotonic Interconnects

机译:纳米光子互连中的握手和循环流量控制

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摘要

Nanophotonics has been proposed to design low latency and high bandwidth Network-On-Chip (NOC) for future Chip Multi-Processors (CMPs). Recent nanophotonic NOC designs adopt the token-based arbitration coupled with credit-based flow control, which leads to low bandwidth utilization. This thesis proposes two handshake schemes for nanophotonic interconnects in CMPs, Global Handshake (GHS) and Distributed Handshake (DHS), which get rid of the traditional credit-based flow control, reduce the average token waiting time, and finally improve the network throughput. Furthermore, we enhance the basic handshake schemes with setaside buffer and circulation techniques to overcome the Head-Of-Line (HOL) blocking. The evaluations show that the proposed handshake schemes improve network throughput by up to 11x under synthetic workloads. With the extracted trace traffic from real applications, the handshake schemes can reduce the communication delay by up to 55%. The basic handshake schemes add only 0.4% hardware overhead for optical components and negligible power consumption. In addition, the performance of the handshake schemes is independent of on-chip buffer space, which makes them feasible in a large scale nanophotonic interconnect design.
机译:提议使用纳米光子学设计低延迟和高带宽片上网络(NOC),以用于未来的芯片多处理器(CMP)。最近的纳米光子NOC设计采用基于令牌的仲裁与基于信用的流量控制相结合,从而导致带宽利用率低。本文提出了两种用于CMP中纳米光子互连的握手方案:全局握手(GHS)和分布式握手(DHS),它们摆脱了传统的基于信用的流量控制,减少了平均令牌等待时间,并最终提高了网络吞吐量。此外,我们还采用了setaside缓冲区和循环技术来增强基本的握手方案,以克服行头(HOL)阻塞。评估显示,在综合工作负载下,建议的握手方案将网络吞吐量提高了11倍。利用从实际应用程序中提取的跟踪流量,握手方案可以将通信延迟最多降低55%。基本的握手方案仅增加了光学组件硬件开销的0.4%,而功耗却可以忽略不计。此外,握手方案的性能与片上缓冲区空间无关,这使其在大规模纳米光子互连设计中可行。

著录项

  • 作者

    Jayabalan Jagadish;

  • 作者单位
  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en_US
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