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Parallel implementation of hardware-efficient adaptive equalization for coherent PON systems

机译:相干PON系统的硬件高效自适应均衡的平行实现

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The development of the fifth generation mobile (5G) technique stimulates a higher bandwidth requirement for next generation passive optical network (PON) systems. It is a challenge to further double the data rate from 50 to 100 Gb/s/X depending on intensity modulation direct detection due to stringent bandwidth constraints on optical and electrical components. Coherent detection technology is a promising candidate for the future 100 Gb/s/λ or higher PON systems. The parallel implementation of hardware-efficient adaptive equalization tailored to PON systems will accelerate the evolution of coherent PON systems. In view of the current situation that logic resources are abundant while hardened multipliers are few for commercial field programmable gate array (FPGA), the purpose of this work is to reduce the number of hardened multiplexers used for FPGA realized signal processing. The waveform distortion caused by chromatic dispersion (CD) and imperfect frequency response of transceiver is rough compensated by using frequency domain equalization, which alleviate the stringent filter length requirement for the following adaptive equalization. Three Coordinate Rotation Digital Computer-based vector rotators are introduced to realize polarization demultiplexing, where the state of polarization is tracing by using a simplified gradient descent algorithm. A non-butterfly equalizer with few taps for each polarization is designed to handle the residual (CD) and the frequency response difference due to external environment variations and manufacturing technology. With the proposed method, the number of hardened multipliers is reduced by 73% compared with conventional 2×2 multiple-input multiple-output equalizer under the case with the similar receiver sensitivity.
机译:第五代移动(5G)技术的发展刺激了下一代无源光网络(PON)系统的更高带宽要求。根据光学和电气组件上的严格带宽约束,根据强度调制直接检测,将数据速率从50到100 GB / s / x进一步增加数据速率是挑战。相干检测技术是未来100 GB / S /λ或更高PON系统的有希望的候选者。对PON系统定制的硬件高效的自适应均衡的并行实现将加速相干PON系统的演变。鉴于当前情况,逻辑资源丰富而硬化乘法器很少用于商业领域可编程门阵列(FPGA),这项工作的目的是减少用于FPGA实现信号处理的硬化多路复用器的数量。通过使用频域均衡,由色散(CD)和收发器的缺陷频率响应引起的波形失真,通过频域均衡来粗略补偿,这减轻了以下自适应均衡的严格滤波器长度要求。引入了三个坐标旋转数字计算机的矢量旋转器以实现极化解复用,其中通过使用简化的梯度下降算法进行偏振的状态是跟踪。对于每个偏振,具有少量抽头的非蝴蝶均衡器旨在处理由于外部环境变化和制造技术而导致的残差(CD)和频率响应差。利用所提出的方法,与具有类似接收器灵敏度的情况下,与传统的2×2多输入多输出均衡器相比,硬化乘数的数量减少了73%。

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