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Optical Multiplexing Techniques for Photonic Clos Networks in High Performance Computing Architectures

机译:高性能计算架构中光子CLOR网络的光学多路复用技术

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Future high-performance computing (HPC) architectures will consist of whole parallel computing systems integrated on chip-level and boards mounted with lots of computing chips and chip-external main memory. Photonic networks on board and photonic network on chips (NoCs) offer the potential to fulfill the high bandwidth requirements in such systems. In addition they need less power, offer better EMC capabilities and can reduce cabling effort compared to electronic networks. Due to their non-blocking property Clos networks are frequently used in HPC architectures. Therefore we investigated how a photonic on-board Clos network can be realized using Coarse Wavelength-Division-Multiplexing (CWDM) techniques with state-of-the art components based on fibre technology. In addition we present a new photonic Clos NoC architecture based on Wavelength Interchanging (WI) elements, optical waveguide structures, mode-locked laser sources, nanophotonic microrings and passive optical deflection elements to reduce the number of switches. We discuss the benefits and drawbacks for using different optical technologies for such an architecture.
机译:未来的高性能计算(HPC)架构将包括集成在安装有大量计算芯片和芯片外部主存储器的芯片级和板上的整个并行计算系统。芯片上的光子网络和芯片上的光子网络(NOCS)提供了在这种系统中满足高带宽要求的潜力。此外,它们需要更少的电源,提供更好的EMC功能,并与电子网络相比减少布线努力。由于它们的非阻塞性属性,CLOS网络经常用于HPC架构中。因此,我们研究了如何使用基于光纤技术的粗大波分复用(CWDM)技术来实现光子车载磁共路网络的核心网络。此外,我们提出了一种基于波长互换(Wi)元件,光波导结构,模式锁定的激光源,纳米光磁头和无源光学偏转元件的新光子嵌入Noc架构,以减少开关的数量。我们讨论使用不同光学技术的效果和缺点,用于这种架构。

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