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Optical fiber nonlinearity compensation using neural networks

机译:使用神经网络的光纤非线性补偿

摘要

Aspects of the present disclosure describe systems, methods and structures for optical fiber nonlinearity compensation using neural networks that advantageously employ machine learning (ML) algorithms for nonlinearity compensation (NLC) that advantageously provide a system-agnostic model independent of link parameters, and yet still achieve a similar or better performance at a lower complexity as compared with prior-art methods. Systems, methods, and structures according to aspects of the present disclosure include a data-driven model using the neural network (NN) to predict received signal nonlinearity without prior knowledge of the link parameters. Operationally, the NN is provided with intra-channel cross-phase modulation (IXPM) and intra-channel four-wave mixing (IFWM) triplets that advantageously provide a more direct pathway to underlying nonlinear interactions.
机译:本公开的各方面描述了使用神经网络的用于光纤非线性补偿的系统,方法和结构,该系统有利地采用机器学习(ML)算法进行非线性补偿(NLC),该算法有利地提供独立于链路参数的系统不可知模型与现有技术的方法相比,以较低的复杂度实现了相似或更好的性能。根据本公开的方面的系统,方法和结构包括使用神经网络(NN)来预测接收信号非线性的数据驱动模型,而无需事先知道链路参数。在操作上,NN具有通道内交叉相位调制(IXPM)和通道内四波混合(IFWM)三重态,可方便地提供通往基础非线性相互作用的更直接途径。

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