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Analytical study of crosstalk propagation in all-optical networks using perturbation theory

机译:利用扰动理论分析全光网络中的串扰传播

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The performance of current optical networks is inherently limited by the speed of electronic components and, in particular, by electronic switches. A new generation of optical networks, referred to as all-optical networks, overcomes this limitation by switching data entirely optically using all-optical crossconnects (OXCs). However, all-optical networks are prone to phenomena that are unknown to current optical networks with electrical regeneration: OXCs are subject to optical leaks, called crosstalk, resulting in unwanted components being added to transmitted signals, and this crosstalk is transmitted over very long paths without any signal regeneration. In this paper, we consider the interplay between fiber nonlinearity and crosstalk signals over long distances as the source of performance degradation, measured in terms of Q factor. We present an analytical crosstalk model for all-optical networks and give expressions for the performance degradation resulting from the joint propagation of a signal [using a continuous-wave (CW) assumption and perturbation theory] and crosstalk in large networks. Analytical calculations required by this model are shown to be much less computationally intensive than simulations. Simulations are carried out to validate our analytical model and good agreement is found between the analytical model and simulations for wide ranges of parameters.
机译:当前的光网络的性能固有地受到电子部件的速度的限制,特别是受到电子开关的速度的限制。新一代的光网络,称为全光网络,通过使用全光交叉连接(OXC)完全以光学方式交换数据来克服此限制。但是,全光网络很容易出现当前具有电再生功能的光网络所不知道的现象:OXC容易遭受光泄漏(称为串扰),导致不必要的分量被添加到传输的信号中,并且这种串扰会在很长的路径上传输没有任何信号再生。在本文中,我们将长距离上的光纤非线性和串扰信号之间的相互作用视为性能下降的根源,以Q因子表示。我们提出了一种用于全光网络的分析串扰模型,并给出了由于信号的联合传播(使用连续波(CW)假设和扰动理论)和大型网络中的串扰导致的性能下降的表达式。结果表明,该模型所需的分析计算比模拟的计算量少得多。进行仿真以验证我们的分析模型,并且对于各种参数,在分析模型和仿真之间发现了很好的一致性。

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