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Linear and Nonlinear Impairment Compensation in Coherent Optical Transmission with Digital Signal Processing

机译:数字信号处理相干光传输中的线性和非线性损伤补偿

摘要

Digital signal processing (DSP) has become one of the main enabling technologies for the physical layer of coherent optical communication networks. The DSP subsystems are used to implement several functionalities in the digital domain, from synchronization to channel equalization. Flexibility and effectiveness of DSP contribute to reducing costs and increase reliability of optical communications systems. The work presented in this thesis focuses on DSP subsystems for coherent optical communication systems. In particular, the contributions presented in this thesis relate to the following topics: (I) Kerr nonlinearity compensation, (II) spectral shaping, and (III) adaptive equalization. For (I), original contributions are presented to the study of the nonlinearity compensation (NLC) with digital backpropagation (DBP). Numerical and experimental performance investigations are shown for different application scenarios. Concerning (II), it is demonstrated how optical and electrical (digital) pulse shaping can be allied to improve the spectral confinement of a particular class of optical time-division multiplexing (OTDM) signals that can be used as a building block for fast signaling single-carrier transceivers. Finally, regarding (III), original contributions to equalization in coherent optical receivers are proposed, consisting of a new approach to analyzing and design equalizers for systems where receivers or transmitters may be subject to front-end imperfections. Numerical and experimental validations are performed to evaluate the proposed methods. In conclusion, the results presented in this thesis contribute to the state-of-the-art of DSP for coherent optical communication over single-mode fibers (SMFs). The techniques investigated have the potential to improve performance and reliability of such systems, ultimately enabling throughput and transmission reach improvements for the next generations of coherent systems.
机译:数字信号处理(DSP)已成为相干光通信网络物理层的主要支持技术之一。 DSP子系统用于在数字域中实现从同步到通道均衡的多种功能。 DSP的灵活性和有效性有助于降低成本并提高光通信系统的可靠性。本文提出的工作重点是用于相干光通信系统的DSP子系统。特别是,本文提出的贡献涉及以下主题:(I)Kerr非线性补偿,(II)频谱整形和(III)自适应均衡。对于(I),将对数字反向传播(DBP)的非线性补偿(NLC)的研究做出原始贡献。显示了针对不同应用场景的数值和实验性能研究。关于(II),演示了如何结合光和电(数字)脉冲整形来改善特定类别的光时分多路复用(OTDM)信号的频谱限制,该信号可以用作快速信令的基础单载波收发器。最后,关于(III),提出了对相干光接收机中均衡的原始贡献,其中包括对接收机或发射机可能会受到前端缺陷影响的系统进行均衡器分析和设计的新方法。进行了数值和实验验证,以评估所提出的方法。总之,本文提出的结果有助于单模光纤(SMF)上用于相干光通信的DSP的最新发展。所研究的技术具有改善此类系统的性能和可靠性的潜力,最终可以提高下一代相干系统的吞吐量和传输效率。

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