Wakayama Yuta, Gerard Thomas, Sillekens Eric, Galdino Lídia, Lavery Domaniç, Killey Robert I, Bayvel Polina
Opt Express. 2021 Jun 7;29(12):18743-18759. doi: 10.1364/OE.423361.
We experimentally investigated a pilot-aided digital signal processing (DSP) chain in combination with high-order geometric constellation shaping to increase the achievable information rates (AIRs) in standard intradyne coherent transmission systems. We show that the AIR of our system at 15 GBd was maximised using geometrically-shaped (GS) 2048 quadrature amplitude modulation (QAM), reaching 18.0 b/4D-symbol in back-to-back transmission and 16.9 b/4D-symbol after transmission through 100 km of a single-mode fibre after subtracting the pilot overhead (OH). This represents the highest-order GS format demonstrated to date, supporting the highest AIR of any standard intradyne system using conventional optics and 8-bit electronics. Detailed characterisation of the DSP, transceiver performance, and transmission modelling has also been carried out to provide insight into sources of impairments and directions for further improvement.
我们通过实验研究了一种结合高阶几何星座整形的导频辅助数字信号处理(DSP)链,以提高标准内差相干传输系统中可实现的信息速率(AIR)。我们表明,在15 GBd时,使用几何形状(GS)2048正交幅度调制(QAM)可使我们系统的AIR最大化,在背对背传输中达到18.0比特/4D符号,在减去导频开销(OH)后通过100公里单模光纤传输后为16.9比特/4D符号。这代表了迄今为止所展示的最高阶GS格式,支持使用传统光学器件和8位电子设备的任何标准内差系统的最高AIR。还对DSP、收发器性能和传输建模进行了详细表征,以深入了解损伤源和进一步改进的方向。