Super-Nyquist signal transmission and digital signal processing

Photonics Asia Pub Date : 2014-12-03 DOI:10.1117/12.2071275
Junwen Zhang, Jianjun Yu, N. Chi
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Abstract

Super-Nyquist, also known as Fast-than-Nyquist (FTN), signal generation based on optical or electrical spectrum shaping methods has been demonstrated to be an efficient scheme for future high-capacity transmission systems. Super- Nyquist signal demodulations based on maximum a posteriori (MAP) or maximum likelihood sequence estimation (MLSE) on receiver side have been demonstrated in 100G, 200G and 400G systems, which enables PDM-QPSK transmission with 4bit/s/Hz net spectral efficiency (SE) at lower OSNR requirement and longer transmission distance. Further studies also show the highly filtering-tolerant advantage of the super-Nyquist signal when using the 9-QAMbased multi-modulus equalization. This feature is quite useful for signals transmission under the aggressive optical filtering in multiple reconfigurable optical add-drop multiplexers (ROADMs) transmission link. In this paper, we review the newly reported super-Nyquist experiments using the optical super-Nyquist filtering 9-QAM like signals based on multi-modulus equalization (MMEQ). We directly recover the Nyquist filtered QPSK to a 9-QAM like signal. We first successfully transmitted 100-GHz-grid, 20 channels single-carrier 440-Gb/s super-Nyquist 9-QAM-like signal over 3600-km ultra-large effective-area fiber (ULAF) at record a net SE of 4b/s/Hz (after excluding the 7% hard-decision FEC overhead). The highly filtering-tolerant performance of the 9-QAM liked super-Nyquist signal is also experimentally demonstrated. Using this scheme, we then successfully transmit 10 channels 440-Gb/s signal over 3000- km ULAF and 10 cascaded ROADMs with 100-GHz-grid based on the single-carrier ETDM 110-GBaud QPSK. It is the highest baud rate of all-ETDM signal reported with the highest net SE at this baud rate for PDM-QPSK signal.
超级奈奎斯特信号传输和数字信号处理
超级奈奎斯特,也被称为比奈奎斯特快(FTN),基于光学或电气频谱整形方法的信号产生已被证明是未来高容量传输系统的有效方案。在100G、200G和400G系统中,基于接收机侧最大后验(MAP)或最大似然序列估计(MLSE)的超级奈奎斯特信号解调已经得到验证,实现了PDM-QPSK在较低的OSNR要求和较长的传输距离下以4bit/s/Hz的净频谱效率(SE)传输。进一步的研究还表明,当使用基于9- qam的多模均衡时,超级奈奎斯特信号具有高度的耐滤性优势。这一特性对于在多路可重构光加丢复用器(roadm)传输链路中主动光滤波下的信号传输是非常有用的。本文综述了最近报道的基于多模均衡(MMEQ)的光学超级奈奎斯特滤波类9-QAM信号的超级奈奎斯特实验。我们直接将奈奎斯特滤波后的QPSK恢复为类似9-QAM的信号。我们首先在3600公里的超大有效面积光纤(ULAF)上成功传输了100 ghz网格,20通道单载波440 gb /s超级奈奎斯特9- qam类信号,记录净SE为4b/s/Hz(排除7%硬决策FEC负载后)。实验还证明了9-QAM类超级奈奎斯特信号的高容忍滤波性能。利用该方案,我们成功地在3000公里的ULAF上传输了10个通道440 gb /s的信号,并基于单载波ETDM 110-GBaud QPSK在100- ghz网格上传输了10个级联roadm。这是所有etdm信号中波特率最高的,PDM-QPSK信号在此波特率下的净SE最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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