Low power digital signal processing-lite scheme for short-reach polarization demultiplexing-64 quadrature amplitude modulation coherent optical system

IF 1.1 4区 工程技术 Q4 OPTICS Optical Engineering Pub Date : 2023-11-14 DOI:10.1117/1.oe.62.11.118102
Qiang Li, Wei Ji, Penghui Li, Pengcheng Liu, Fengyu Liu, Yuqian Wang, Yanjun Zhu
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Abstract

Coherent optical communication critically relies on efficient digital signal processing (DSP). We demonstrate a lite DSP scheme to reduce the transmission cost and power consumption, which is mainly realized by reducing the sampling rate and simplifying the DSP algorithm. On the one hand, the baud-rate sampling technique based on the integral circuit can reduce the amount of data processing in DSP. On the other hand, we proposed a simplified joint modified constant modulus algorithm (MCMA) and phase-dependent decision-directed least mean square (DD-LMS) algorithm for adaptive blind polarization demultiplexing and phase recovery in which the butterfly structure is no longer needed for DD-LMS. And we compare the proposed simplified algorithm with the joint traditional CMA and blind phase search and the MCMA, in terms of performance in the 80-Gbaud dual-polarization 64QAM homodyne detection system. The results show that the proposed lite DSP mechanism can effectively reduce the power consumption of DSP by sub-rate sampling and simplifying the corresponding algorithm, which provides an alternative scheme for low-power optical interconnection of data centers.
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短距离偏振解复用的低功耗数字信号处理-64正交调幅相干光学系统
相干光通信关键依赖于高效的数字信号处理(DSP)。为了降低传输成本和功耗,本文提出了一种精简的DSP方案,主要通过降低采样率和简化DSP算法来实现。一方面,基于集成电路的波特率采样技术可以减少DSP的数据处理量。另一方面,我们提出了一种简化的修正常模算法(MCMA)和相位相关决策导向最小均方(DD-LMS)联合算法,用于自适应盲极化解复用和相位恢复,其中DD-LMS不再需要蝴蝶结构。在80 gbaud双偏振64QAM纯差检测系统中,将本文提出的简化算法与传统的CMA和盲相位搜索联合算法以及MCMA进行性能比较。结果表明,所提出的精简DSP机制通过分速率采样和简化相应的算法,可以有效降低DSP的功耗,为数据中心的低功耗光互联提供了一种替代方案。
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来源期刊
Optical Engineering
Optical Engineering 工程技术-光学
CiteScore
2.70
自引率
7.70%
发文量
393
审稿时长
2.6 months
期刊介绍: Optical Engineering publishes peer-reviewed papers reporting on research and development in optical science and engineering and the practical applications of known optical science, engineering, and technology.
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