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Electronic Impairment Mitigation in Optically Multiplexed Multicarrier Systems

机译:光学多路复用多载波系统中的电子损伤缓解

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In order to improve the performance of optically multiplexed multicarrier systems with channel spacing equal to the symbol rate per carrier, we propose and systematically investigate an electronic signal processing technique to achieve near-interchannel crosstalk free and intersymbol-interference (ISI) free operation. We theoretically show that achieving perfect orthogonality between channels in these systems, together with ISI free operation as needed in generic communication systems, requires the shaping of the spectral profiles of not only the demultiplexing filter, but also the signal of each channel before demultiplexing. We develop a novel semianalytical method to quantitatively analyze the levels of residual crosstalk and ISI arising from nonideal system response in these systems. We show that by prefiltering the signal to ensure that the system impulse response before channel demultiplexing approaches the targeted condition, the residual crosstalk due to imperfect orthogonality can be significantly mitigated and the necessity for carrier phase control in single-quadrature format-based system can be relaxed. Further combining prefiltering and receiver-side postfiltering to adaptively trim the demultiplexing filter enhances the performance. The use of the combined digital signal processing (DSP) in coherent-detection quadrature phase-shifted keying (QPSK)-based optically multiplexed multicarrier system shows that this method outperforms conventional QPSK-based multicarrier system without DSP or with only receiver-side DSP, especially when the responses of the transmitter and the demultiplexing filter are not precisely designed and the sampling rate of the analogue-to-digital converter is not sufficiently high. In addition, the inclusion of ISI free operation, with this aspect similar to the reshaping method in conventional wavelength-division-multiplexing systems, allows the relaxation of the modulation bandwidth and chromatic dispersion compensation.
机译:为了提高信道间隔等于每个载波符号率的光复用多载波系统的性能,我们提出并系统地研究了一种电子信号处理技术,以实现近信道间无串扰和无码间干扰(ISI)的操作。我们从理论上证明,要在这些系统中的信道之间实现完美的正交性,再加上通用通信系统中所需的无ISI操作,不仅需要对多路分解滤波器的频谱分布图进行整形,而且还需要对每个信道的信号进行解复用。我们开发了一种新颖的半分析方法来定量分析这些系统中非理想系统响应引起的残留串扰和ISI的水平。我们表明,通过对信号进行预滤波以确保在信道多路分解接近目标条件之前的系统脉冲响应,可以显着缓解由于不完美的正交性引起的残留串扰,并且可以在基于单正交格式的系统中实现载波相位控制的必要性轻松。进一步组合预滤波和接收机侧后滤波以适应性地调整多路分解滤波器可提高性能。在基于相干检测正交相移键控(QPSK)的光多路复用多载波系统中使用组合数字信号处理(DSP)表明,该方法优于不具有DSP或仅具有接收器侧DSP的传统基于QPSK的多载波系统,尤其是当发射机和多路分解滤波器的响应设计不精确并且模数转换器的采样率不够高时。此外,与传统波分复用系统中的重塑方法类似,包含ISI自由操作的情况允许放松调制带宽和色散补偿。

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