论文标题
在存在激光相噪声的情况下优化发射机侧信号旋转
Optimization of Transmitter-Side Signal Rotations in the Presence of Laser Phase Noise
论文作者
论文摘要
在存在激光相噪声的情况下,研究了发射器端多维信号旋转对多通道光学传输性能的影响。特别是,假定在通道之间,激光相噪声是不相关的。为了进行这项研究,考虑了一个简单的多通道激光相位模型,该模型已在实验上进行了实验验证的弱耦合的多型纤维传输。由于所考虑的旋转方案旨在与接收器侧载体相估计(CPE)结合使用,因此对模型进行了修改,以进一步假设CPE发生了不完善,从而在处理后的信号中留下了残留的相位噪声。基于此模型,得出了两个接收器结构,并用于通过蒙特卡洛模拟来数值优化发射机端信号旋转。对于合理数量的残余相噪声,发现基于Hadamard矩阵的旋转对于四维信号的传输几乎是最佳的。此外,可以针对两个功率的任何维度执行Hadamard旋转。通过利用此属性,可以观察到可实现的信息率中每个复杂符号的高达0.25位,以传播高阶星座。
The effects of transmitter-side multidimensional signal rotations on the performance of multichannel optical transmission are studied in the presence of laser phase noise. In particular, the laser phase noise is assumed to be uncorrelated between channels. To carry out this study, a simple multichannel laser-phase-noise model that has been experimentally validated for weakly-coupled multicore-fiber transmission is considered. As the considered rotation scheme is intended to work in conjunction with receiver-side carrier phase estimation (CPE), the model is modified to further assume that imperfect CPE has taken place, leaving residual phase noise in the processed signal. Based on this model, two receiver structures are derived and used to numerically optimize transmitter-side signal rotations through Monte Carlo simulations. For reasonable amounts of residual phase noise, rotations based on Hadamard matrices are found to be near-optimal for transmission of four-dimensional signals. Furthermore, Hadamard rotations can be performed for any dimension that is a power of two. By exploiting this property, an increase of up to 0.25 bit per complex symbol in an achievable information rate is observed for transmission of higher-order constellations.