Field and lab experimental demonstration of nonlinear impairment compensation using neural networks

被引:155
作者
Zhang, Shaoliang [1 ]
Yaman, Fatih [1 ]
Nakamura, Kohei [2 ]
Inoue, Takanori [2 ]
Kamalov, Valey [3 ]
Jovanovski, Ljupcho [3 ]
Vusirikala, Vijay [3 ]
Mateo, Eduardo [2 ]
Inada, Yoshihisa [2 ]
Wang, Ting [1 ]
机构
[1] NEC Labs Amer Inc, Princeton, NJ 08540 USA
[2] NEC Corp Ltd, Submarine Network Div, Tokyo 1088001, Japan
[3] Google Inc, Mountain View, CA 94043 USA
关键词
DISPERSION;
D O I
10.1038/s41467-019-10911-9
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Fiber nonlinearity is one of the major limitations to the achievable capacity in long distance fiber optic transmission systems. Nonlinear impairments are determined by the signal pattern and the transmission system parameters. Deterministic algorithms based on approximating the nonlinear Schrodinger equation through digital back propagation, or a single step approach based on perturbation methods have been demonstrated, however, their implementation demands excessive signal processing resources, and accurate knowledge of the transmission system. A completely different approach uses machine learning algorithms to learn from the received data itself to figure out the nonlinear impairment. In this work, a single-step, system agnostic nonlinearity compensation algorithm based on a neural network is proposed to pre-distort symbols at transmitter side to demonstrate similar to 0.6 dB Q improvement after 2800 km standard single-mode fiber transmission using 32 Gbaud signal. Without prior knowledge of the transmission system, the neural network tensor weights are constructed from training data thanks to the intra-channel cross-phase modulation and intra-channel four-wave mixing triplets used as input features.
引用
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页数:8
相关论文
共 28 条
[1]  
Agrawal G., 2010, Nonlinear Fiber Optics, Vfourth
[2]   Replacing the Soft-Decision FEC Limit Paradigm in the Design of Optical Communication Systems [J].
Alvarado, Alex ;
Agrell, Erik ;
Laver, Domanic ;
Maher, Robert ;
Bayvel, Polina .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2016, 34 (02) :707-721
[3]  
[Anonymous], 2016, DEEP LEARNING
[4]  
[Anonymous], POWER ELECT MOTION
[5]   Rate Adaptation and Reach Increase by Probabilistically Shaped 64-QAM: An Experimental Demonstration [J].
Buchali, Fred ;
Steiner, Fabian ;
Boecherer, Georg ;
Schmalen, Laurent ;
Schulte, Patrick ;
Idler, Wilfried .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2016, 34 (07) :1599-1609
[6]  
Cai J. -X., 2017, P OPT FIB COMM C POS
[7]   Digital signal processing for fiber nonlinearities [Invited] [J].
Cartledge, John C. ;
Guiomar, Fernando P. ;
Kschischang, Frank R. ;
Liga, Gabriele ;
Yankov, Metodi P. .
OPTICS EXPRESS, 2017, 25 (03) :1916-1936
[8]   Improved single channel backpropagation for intra-channel fiber nonlinearity compensation in long-haul optical communication systems [J].
Du, Liang B. ;
Lowery, Arthur J. .
OPTICS EXPRESS, 2010, 18 (16) :17075-17088
[9]   Capacity Limits of Optical Fiber Networks [J].
Essiambre, Rene-Jean ;
Kramer, Gerhard ;
Winzer, Peter J. ;
Foschini, Gerard J. ;
Goebel, Bernhard .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2010, 28 (04) :662-701
[10]   Intra-channel cross-phase modulation and four-wave mixing in high-speed TDM systems [J].
Essiambre, RJ ;
Mikkelsen, B ;
Raybon, G .
ELECTRONICS LETTERS, 1999, 35 (18) :1576-1578