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Optimized Superscalar Parallelization-Based Carrier Phase Recovery for Agile Metro Optical Networks

机译:优化的基于超标量并行化的敏捷城域光网络载波相位恢复

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In this paper, we present a format-transparent carrier phase recovery algorithm for the agile metropolitan optical networks based on an optimized superscalar parallelization structure. The pilot overhead and the buffer size in the superscalar parallelization can be minimized by optimizing the parallelization structure depending on the required laser linewidth tolerance of the system. The trade-off between the laser linewidth tolerance and the reduction of buffer size in the proposed superscalar parallelization is revealed in simulations for 16-QAM, 32-QAM, and 64-QAM, respectively. The results indicate that the buffer size in the superscalar parallelization can be reduced significantly when commercially available external cavity lasers (ECL) are employed for coherent detection in metro links beyond 100 Gb/s. Experiments are further conducted in a single-channel system with ECLs as the transmitter and local oscillator lasers to demonstrate the reduction of the pilot overhead and buffer size using the proposed superscalar parallelization compared with the previous superscalar structures.
机译:在本文中,我们提出了一种基于优化超标量并行化结构的敏捷城域光网络的格式透明载波相位恢复算法。通过根据系统所需的激光线宽容限优化并行化结构,可以使超标量并行化中的导频开销和缓冲区大小最小化。分别在16-QAM,32-QAM和64-QAM的仿真中揭示了所提出的超标量并行化中激光线宽容限与缓冲区大小减小之间的权衡。结果表明,当在100 Gb / s以上的城域链路中使用市售外腔激光器(ECL)进行相干检测时,超标量并行化中的缓冲区大小可以大大减小。在以ECL作为发射器和本地振荡器激光器的单通道系统中进一步进行了实验,以证明与以前的超标量结构相比,使用建议的超标量并行化技术可以减少导频开销和缓冲区大小。

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