Nonlinear Fourier transform using multistage perturbation technique for fiber-optic systems

被引:3
作者
Bidaki, Elham [1 ]
Kumar, Shiva [1 ]
机构
[1] McMaster Univ, Dept Elect & Comp Engn, Hamilton, ON, Canada
关键词
TIME LENSES; TRANSMISSION; FFT;
D O I
10.1364/JOSAB.35.002286
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In nonlinear frequency division multiplexed systems, inverse nonlinear Fourier transform (INFT) and nonlinear Fourier transform (NFT) are applied at the transmitter and receiver, respectively, so as to minimize the impact of fiber nonlinear effects. Typically, the INFT is applied at the digital signal processing of the transmitter to the individual channels of a wavelength division multiplexed (WDM) system, and these channels are linearly multiplexed using the wavelength-division multiplexer. Hence, currently, NFT-based systems suffer from nonlinear impairments due to other channels of a WDM system. This problem can be alleviated if the signals are nonlinearly multiplexed/demultiplexed using INFT and NFT in the optical domain, which is hard to achieve. In this paper, we develop a novel multistage perturbation technique to realize the NFT as the cascade of linear discrete Fourier transforms. Since all-optical discrete Fourier transforms have been implemented in silicon photonics, the proposed approach provides a promising way to implement the NFT in the optical domain. The other challenge in real time implementation of the NFT-based system is the computational complexity of the NFT. In this paper, we develop a novel nonlinear discrete Fourier transform algorithm to realize NFT. When the signal energy is small, the NFT can be evaluated by the single stage second-or third-order perturbation methods. However, as the signal energy increases, we show that the single stage technique is not accurate and the multistage perturbation technique provides reasonably accurate results for high energy signals. The number of stages required depends on the signal energy and desired accuracy. Modifying the fast Fourier transform (FFT) algorithm, the computational cost of the NFT based on the multistage perturbation technique is found to be O(KN log(2) N/K), where N is the number of signal samples and K is the number of stages. An advantage of the proposed approach is that the computation can be split into FFTs of smaller lengths, which can be processed on K parallel processors. The computational cost per processor is O(N log(2) N/K). (c) 2018 Optical Society of America
引用
收藏
页码:2286 / 2293
页数:8
相关论文
共 25 条
  • [1] ON HOMOCLINIC STRUCTURE AND NUMERICALLY INDUCED CHAOS FOR THE NONLINEAR SCHRODINGER-EQUATION
    ABLOWITZ, MJ
    HERBST, BM
    [J]. SIAM JOURNAL ON APPLIED MATHEMATICS, 1990, 50 (02) : 339 - 351
  • [2] NONLINEAR DIFFERENTIAL-DIFFERENCE EQUATIONS AND FOURIER-ANALYSIS
    ABLOWITZ, MJ
    LADIK, JF
    [J]. JOURNAL OF MATHEMATICAL PHYSICS, 1976, 17 (06) : 1011 - 1018
  • [3] Numerical algorithms for the direct spectral transform with applications to nonlinear Schrodinger type systems
    Burtsev, S
    Camassa, R
    Timofeyev, I
    [J]. JOURNAL OF COMPUTATIONAL PHYSICS, 1998, 147 (01) : 166 - 186
  • [4] Chassaing R., 2008, Digital Signal Processing and Applications with the Tms320c6713 and Tms320c6416 Dsk
  • [5] Efficient numerical method for solving the direct Zakharov-Shabat scattering problem
    Frumin, Leonid L.
    Belai, Oleg V.
    Podivilov, Eugeny V.
    Shapiro, David A.
    [J]. JOURNAL OF THE OPTICAL SOCIETY OF AMERICA B-OPTICAL PHYSICS, 2015, 32 (02) : 290 - 296
  • [6] Time Lens-Based Optical Fourier Transformation for All-Optical Signal Processing of Spectrally-Efficient Data
    Guan, Pengyu
    Roge, Kasper Meldgaard
    Lillieholm, Mads
    Galili, Michael
    Hu, Hao
    Morioka, Toshio
    Oxenlowe, Leif Katsuo
    [J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 2017, 35 (04) : 799 - 806
  • [7] EIGENVALUE COMMUNICATION
    HASEGAWA, A
    NYU, T
    [J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 1993, 11 (03) : 395 - 399
  • [8] Simple all-optical FFT scheme enabling Tbit/s real-time signal processing
    Hillerkuss, D.
    Winter, M.
    Teschke, M.
    Marculescu, A.
    Li, J.
    Sigurdsson, G.
    Worms, K.
    Ben Ezra, S.
    Narkiss, N.
    Freude, W.
    Leuthold, J.
    [J]. OPTICS EXPRESS, 2010, 18 (09): : 9324 - 9340
  • [9] Optical adaptive equalization of high-speed signals using time-domain optical Fourier transformation
    Hirooka, Toshihiko
    Nakazawa, Masataka
    [J]. JOURNAL OF LIGHTWAVE TECHNOLOGY, 2006, 24 (07) : 2530 - 2540
  • [10] Kumar S., 2014, Fiber Optic Communications: Fundamentals and Applications, DOI DOI 10.1002/9781118684207