副载波
数字信号处理
计算机科学
无源光网络
电子工程
误码率
多路复用
带宽(计算)
正交调幅
副载波复用
信号处理
正交频分复用
计算机硬件
算法
电信
波分复用
工程类
光学
解码方法
物理
频道(广播)
波长
作者
Haide Wang,Ji Zhou,Zhenping Xing,Qiguang Feng,Kuo Zhang,Keshuang Zheng,Xi Chen,Tao Gui,Liangchuan Li,Jianrui Zeng,Jinyang Yang,Weiping Liu,Changyuan Yu,Zhaohui Li
标识
DOI:10.1109/jlt.2023.3243828
摘要
It is foreseeable that the 100 Gb/s/ $\lambda$ and beyond passive optical network (PON) will be required in future optical access networks to meet the explosive growth of data traffic. The coherent optical systems could be a promising solution for the future beyond 100 G PON. Coherent PON using digital subcarrier multiplexing (DSCM) can provide flexible bandwidth allocation to a large number of access subscribers by dividing subcarriers of the DSCM signal into time slots for time-and-frequency division multiple access. When the optical network unit is allocated a new subcarrier, digital signal processing (DSP) should converge fast in the allocated time slot to ensure a low handoff latency for real-time bandwidth allocation. However, the traditional coherent DSP is hard to realize fast convergence due to blind and complex algorithms. In this paper, we design a specific training sequence (TS) structure and propose data-aided DSP to achieve fast convergence for coherent PON. The feasibility of the proposed scheme is experimentally verified in an 8 Gbaud/SC×8 SCs 400 Gb/s-net-rate coherent PON using DSCM with 16 quadrature amplitude modulation. The experimental results show that fast convergence is jointly realized by the proposed TS structure and data-aided DSP using a 416-symbol TS with a 52 ns duration. The receiver sensitivity at the 20% soft-decision forward error correction limit is approximately $\mathbf{-27}$ dBm and an optical power budget of about 35.5 dB is achieved with a booster amplifier.
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