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首页> 外文期刊>Lightwave Technology, Journal of >Nonlinear Tolerant Spectrally-Efficient Transmission Using PDM 64-QAM Single Carrier FDM With Digital Pilot-Tone
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Nonlinear Tolerant Spectrally-Efficient Transmission Using PDM 64-QAM Single Carrier FDM With Digital Pilot-Tone

机译:使用带有数字导频的PDM 64-QAM单载波FDM的非线性容限频谱高效传输

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摘要

We propose nonlinear tolerant single carrier frequency-division-multiplexing (SC-FDM) signal enhanced by digital pilot-tone for future high speed Ethernet transport like 400 G Ethernet. First, we discuss system configuration and the wavelength-division-multiplexed (WDM) transmission of SC-FDM signals employing polarization-division-multiplexed (PDM) 64-ary quadrature amplitude modulation (64-QAM). Next, we describe the long-haul transmission characteristics of 50 GHz-spaced 538 Gb/s$, times,$7 ch WDM signals. We compare digital back-propagation (DBP) and digital pilot-tone for nonlinearity compensation and experimentally show that digital pilot-tone can effectively compensate the phase noise induced by inter-channel nonlinear effects with less computational complexity than DBP. Then we discuss a high-capacity transmission experiment employing 548 Gb/s PDM-64QAM SC-FDM; 102.3 Tb/s (224$, times ,$548 Gb/s) C- and extended L-band WDM transmission is demonstrated over 240 km (3$, times ,$80 km) of pure-silica-core fiber (PSCF) with all-Raman amplification. Thanks to the high nonlinear tolerance enhanced by pilot-tone, we can employ the 80 km repeater spacing used in conventional terrestrial systems. Assuming 20% forward error correction (FEC) overhead, a spectral efficiency of 9.1 b/s/Hz is achieved.
机译:我们提出了通过数字导频音增强的非线性容限单载波频分复用(SC-FDM)信号,以用于未来的高速以太网传输(如400 G以太网)。首先,我们讨论系统配置和SC-FDM信号的波分复用(WDM)传输,该信号采用偏振分频(PDM)64进制正交幅度调制(64-QAM)。接下来,我们描述间隔为50 GHz的538 Gb / s×7 ch WDM信号的长距离传输特性。我们比较了数字反向传播(DBP)和数字导频音的非线性补偿,并通过实验表明,数字导频音可以有效地补偿由通道间非线性效应引起的相位噪声,其计算复杂度低于DBP。然后,我们讨论了采用548 Gb / s PDM-64QAM SC-FDM的大容量传输实验; 102.4 Tb / s(224 $,倍,$ 548 Gb / s)C和扩展的L波段WDM传输在240 km(3 $,倍,$ 80 km)的纯硅芯光纤(PSCF)上得到了展示-拉曼扩增。由于导频音增强了很高的非线性容限,我们可以采用传统地面系统中使用的80 km中继器间距。假设前向纠错(FEC)开销为20%,则频谱效率为9.1 b / s / Hz。

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