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A Cluster-based Reconfigurable Optical Network on Chip Design

机译:基于芯片设计的基于群集的可重构光学网络

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With the advances in semiconductor and circuit integrated technologies, the number of IP cores that can be integrated on one chip is becoming larger and larger. The traditional bus interconnection method of System on Chip (SoC) cannot meet the performance requirements of the Multi Processor System on Chip (MPSoC). Network on Chip (NoC) has improved the interconnect performance of IP cores. However, the conventional metallic interconnection constrains NoC to make greater improvement, while the mature of optical device integrated technology makes the trend of applying optical interconnection technology to chip promising. This paper proposes a cluster-based reconfigurable optical network on chip architecture (CRONoC), which uses a high bandwidth optical circuit switching network to transmit the inter-cluster data and an electrical packet switching network to control the optical network and transmit the intra-cluster data. By activating the resonators in the proposed inter-cluster crossbar structure, the topology is reconfigurable. Employing the proposed routing algorithm, the maximum distance of the network is reduced to 3 for the 64 core CRONoC. Finally, the performance of CRONoC in terms of end to end latency and network throughput under different traffic patterns is evaluated with OPNET. The simulation results show that the CRONoC architecture is suitable for the local and collective communications.
机译:随着半导体和电路集成技术的进步,可以集成在一个芯片上的IP核的数量变得越来越大。芯片(SOC)系统的传统总线互连方法不能满足芯片(MPSOC)的多处理器系统的性能要求。芯片上的网络(NOC)改进了IP核心的互连性能。然而,传统的金属互连约束NOC以提高改进,而光学器件集成技术的成熟使得将光学互连技术应用于芯片有前途的趋势。本文提出了一种基于集群的可重新配置光网络(Cronoc),它使用高带宽光学电路交换网络来发送群集间数据和电气包交换网络来控制光网络并传输帧内簇数据。通过在所提出的簇间横杆结构中激活谐振器,拓扑是可重新配置的。采用所提出的路由算法,对于64核心Cronoc,网络的最大距离减少到3。最后,使用OPNET评估不同流量模式下的终端延迟和网络吞吐量的Cronoc的性能。仿真结果表明,Cronoc架构适用于本地和集体通信。

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