作者
Pedro J Freire, Vladislav Neskornuik, Antonio Napoli, Bernhard Spinnler, Nelson Costa, Ginni Khanna, Emilio Riccardi, Jaroslaw E Prilepsky, Sergei K Turitsyn
发表日期
2020/12/3
期刊
Journal of Lightwave Technology
卷号
39
期号
6
页码范围
1696-1705
出版商
IEEE
简介
Nonlinearity compensation is considered as a key enabler to increase channel transmission rates in the installed optical communication systems. Recently, data-driven approaches - motivated by modern machine learning techniques - have been proposed for optical communications in place of traditional model-based counterparts. In particular, the application of neural networks (NN) allows improving the performance of complex modern fiber-optic systems without relying on any a priori knowledge of their specific parameters. In this work, we introduce a novel design of complex-valued NN for optical systems and examine its performance in standard single mode fiber (SSMF) and large effective-area fiber (LEAF) links operating in relatively high nonlinear regime. First, we present a methodology to design a new type of NN based on the assumption that the channel model is more accurate in the nonlinear regime …
引用总数
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PJ Freire, V Neskornuik, A Napoli, B Spinnler, N Costa… - Journal of Lightwave Technology, 2020