Nonlinear Digital Pre-distortion of Transmitter Components

被引:111
作者
Berenguer, Pablo Wilke [1 ]
Noelle, Markus [1 ]
Molle, Lutz [1 ]
Raman, Talha [2 ]
Napoli, Antonio [3 ]
Schubert, Colja [1 ]
Fischer, Johannes Karl [1 ]
机构
[1] Heinrich Hertz Inst Nachrichtentech Berlin GmbH, Fraunhofer Inst Telecommun, D-10587 Berlin, Germany
[2] Eindhoven Univ Technol, COBRA Inst, NL-5612 AZ Eindhoven, Netherlands
[3] Coriant R&D, D-81541 Munich, Germany
关键词
Digital signal processing; nonlinear distortion; nonlinear filters; optical transmitters; quadrature amplitude modulation (QAM); wavelength division multiplexing; COMPENSATION; TRANSMISSION; MITIGATION; SYSTEMS;
D O I
10.1109/JLT.2015.2510962
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We present a linear and nonlinear digital pre-distortion (DPD) tailored to the components of an optical transmitter. The DPD concept uses nonlinear models of the transmitter devices, which are obtained from direct component measurements. While the digital-to-analog converter and driver amplifier are modeled jointly by a Volterra series, the modulator is modeled independently as a Wiener system. This allows for a block-wise compensation of the modulator by a Hammerstein system and a pre-distortion of the electrical components by a second Volterra series. In simulations and extensive experiments, the performance of our approach for nonlinear DPD is compared to an equivalent linear solution as well as to a configuration without any DPD. The experiments were performed using M-ary quadrature-amplitude modulation (M-QAM) formats ranging from 16- to 128-QAM at a symbol rate of 32 GBd. It is shown that the DPD improves the required optical signal-to-noise ratio at a bit error ratio of 2.10(-2) by at least 1.2 dB. Nonlinear DPD outperforms linear DPD by an additional 0.9 and 2.7 dB for higher-order modulation formats such as 64-QAM and 128-QAM, respectively.
引用
收藏
页码:1739 / 1745
页数:7
相关论文
共 25 条
[1]   Modeling and compensation of transmitter nonlinearity in coherent optical OFDM [J].
Amiralizadeh, Siamak ;
Nguyen, An T. ;
Rusch, Leslie A. .
OPTICS EXPRESS, 2015, 23 (20) :26192-26207
[2]   Nonlinearity mitigation for high-speed optical OFDM transmitters using digital pre-distortion [J].
Bao, Yuan ;
Li, Zhaohui ;
Li, Jianping ;
Feng, Xinhuan ;
Guan, Bai-ou ;
Li, Guifang .
OPTICS EXPRESS, 2013, 21 (06) :7354-7361
[3]   FADING MEMORY AND THE PROBLEM OF APPROXIMATING NONLINEAR OPERATORS WITH VOLTERRA SERIES [J].
BOYD, S ;
CHUA, LO .
IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS, 1985, 32 (11) :1150-1161
[4]   Pilot-symbols-aided cycle slip mitigation for DP-16QAM optical communication systems [J].
Cheng, Haiquan ;
Li, Yan ;
Zhang, Fangzheng ;
Wu, Jian ;
Lu, Jianxin ;
Zhang, Guoyi ;
Xu, Jian ;
Lin, Jintong .
OPTICS EXPRESS, 2013, 21 (19) :22166-22172
[5]   New Devices Enabling Software-Defined Optical Networks [J].
Collings, Brandon .
IEEE COMMUNICATIONS MAGAZINE, 2013, 51 (03) :66-71
[6]  
Dou L., 2015, OPT FIB COMM C EXH L
[7]   Experimental demonstration of a format-flexible single-carrier coherent receiver using data-aided digital signal processing [J].
Elschner, Robert ;
Frey, Felix ;
Meuer, Christian ;
Fischer, Johannes Karl ;
Alreesh, Saleem ;
Schmidt-Langhorst, Carsten ;
Molle, Lutz ;
Tanimura, Takahito ;
Schubert, Colja .
OPTICS EXPRESS, 2012, 20 (27) :28786-28791
[8]   A new Volterra predistorter based on the indirect learning architecture [J].
Eun, C ;
Powers, EJ .
IEEE TRANSACTIONS ON SIGNAL PROCESSING, 1997, 45 (01) :223-227
[9]   Compensation of Quadrature Imbalance in an Optical QPSK Coherent Receiver [J].
Fatadin, Irshaad ;
Savory, Seb J. ;
Ives, David .
IEEE PHOTONICS TECHNOLOGY LETTERS, 2008, 20 (17-20) :1733-1735
[10]   Bandwidth-Variable Transceivers based on Four-Dimensional Modulation Formats [J].
Fischer, Johannes Karl ;
Alreesh, Saleem ;
Elschner, Robert ;
Frey, Felix ;
Noelle, Markus ;
Schmidt-Langhorst, Carsten ;
Schubert, Colja .
JOURNAL OF LIGHTWAVE TECHNOLOGY, 2014, 32 (16) :2886-2895