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Optimize the Power Consumption and SNR of the 3D Photonic High-Radix Switch Architecture Based on Extra Channels and Redundant Rings

机译:基于额外通道和冗余环,优化3D光子高基数开关架构的功耗和SNR

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The demand from exascale computing has made the design of high-radix switch chips an attractive and challenging research field in EHPC (exascale high-performance computing). The static power, due to the thermal sensitivity and process variation of the microresonator rings, and the cross talk noise of the optical network become the main bottlenecks of the network’s scalability. This paper proposes the analyze model of the trimming power, process variation power, and signal-to-noise ratio (SNR) for the Graphein-based high-radix optical switch networks and uses the extra channels and the redundant rings to decrease the trimming power and the process variation power. The paper also explores the SNR under different configurations. The simulation result shows that when using 8 extra channels in the crossbar optical network, the trimming power reduces almost 80% and the process variation power decreases 65% by adding 16 redundant rings in the crossbar optical network. All of these schemes have little influence on the SNR. Meanwhile, the greater channel spacing has great advantages to decrease the static power and increase the SNR of the optical network.
机译:百亿亿次计算的需求已使高基数交换芯片的设计成为EHPC(亿万亿次高性能计算)研究领域中有吸引力且充满挑战的研究领域。由于微谐振器环的热灵敏度和工艺变化,静态功率以及光网络的串扰噪声成为网络可扩展性的主要瓶颈。本文提出了基于石墨烯的高基数光交换网络的微调功率,过程变化功率和信噪比(SNR)的分析模型,并使用额外的通道和冗余环来降低微调功率和过程变化能力。本文还探讨了不同配置下的SNR。仿真结果表明,在纵横制光网络中使用8个额外的通道时,通过在纵横制光网络中添加16个冗余环,微调功率降低了近80%,过程变化功率降低了65%。所有这些方案对SNR的影响很小。同时,较大的信道间隔具有减少静态功率和增加光网络的SNR的巨大优势。

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