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Characterization and compensation of induced non-linear phase offset in multicarrier optical systems based on clustering techniques

机译:基于聚类技术的多载波光学系统诱导非线性相位偏移的表征及补偿

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Multicarrier optical systems are expected to allow data transmission above 100 Gbps in the next generation long-haul optical networks with a minimum spectral separation between carriers to increase spectral efficiency. Nevertheless, closely separation between optical carriers cause Interchannel interference (ICI) due to the inherent non-linear effects associated to optical fiber such as self-phase modulation (SPM) and cross-phase modulation (XPM). Both SPM and XPM induce a phase shifting in transmitted frequency multiplexed signals. This phase shifting can be observed as a rotated constellation diagram of phase-modulated signals and it degrades system performance by increasing the Bit-Error-Rate (BER). In this paper, a phase offset estimation and compensation using k-means clustering algorithm is validated by simulation in a multicarrier optical system. The optical carriers are modulated in PSK and 16-QAM formats at 32 Gbaud and signal transmission is simulated over standard single-mode fiber (SSMF). System performance is analyzed as a function of frequency carrier spacing and transmission distances. After Phase correction a decrease of the BER is achieved, demonstrating the feasibility and robustness of the proposed clustering technique to compensate induced nonlinear constellations rotations in future multicarrier optical networks.
机译:预计多载波光学系统将允许在下一代长途光网络中以高于100 Gbps的数据传输,其中载波之间的最小频谱分离以增加光谱效率。然而,光学载体之间的密切间隔导致与光纤相关的固有的非线性效果,例如自相调制(SPM)和交互相位调制(XPM)相关的内轴干扰(ICI)。 SPM和XPM都诱导透射频率复用信号中的相位移位。可以观察到该相位转换作为相位调制信号的旋转星座图,并且通过增加误码率(BER)来降低系统性能。在本文中,通过在多载波光学系统中的仿真验证了使用K-Means聚类算法的相位偏移估计和补偿。光学载波以PSK和16-QAM格式调制,在32 GBaud,并在标准单模光纤(SSMF)上模拟信号传输。系统性能被分析为频率载波间隔和传输距离的函数。在相位校正之后,实现了BER的减少,证明了所提出的聚类技术的可行性和稳健性,以补偿未来的多载波光网络中的诱导的非线性星座旋转。

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