• DocumentCode
    1756279
  • Title

    Pilot-Aided Channel Equalization in RGI-PDM-CO-OFDM Systems

  • Author

    Xiang Li ; Wen-De Zhong ; Alphones, Arokiaswami ; Changyuan Yu

  • Author_Institution
    Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
  • Volume
    25
  • Issue
    19
  • fYear
    2013
  • fDate
    Oct.1, 2013
  • Firstpage
    1924
  • Lastpage
    1927
  • Abstract
    A pilot-aided channel equalizer (PACE) is proposed to mitigate the impairments caused by the polarization mode dispersion and laser phase noise simultaneously in reduced-guard-interval polarization-division-multiplexing coherent-optical orthogonal-frequency-division-multiplexing (RGI-PDM-CO-OFDM) transmission systems. Since PACE updates the channel state information symbol-by-symbol, it enables us to track the drifts in the optical channel. Adaptive PACE (APACE) and boosted PACE (BPACE) are then proposed to further improve the performance of PACE. Numerical simulations are carried out to compare the performance of APACE and BPACE with a conventional training symbols aided channel equalizer (TSACE) and adaptive decision-direct channel equalizer for a 108-Gb/s (56-GS/s) RGI-PDM-CO-OFDM system. It is revealed that both APACE and BPACE offer superior performances over the other two equalizers in the presence of laser phase noise, and they can tolerate lasers with a line width around β = 2000 k ( 2πβTs = 2.24 × 10 when it is normalized to the symbol rate 1/Ts). We also show that only small additional computation efforts are required for APACE and BPACE when compared with TSACE.
  • Keywords
    OFDM modulation; adaptive equalisers; laser noise; multiplexing; phase noise; RGI-PDM-CO-OFDM systems; TSACE; adaptive decision-direct channel equalizer; bit rate 108 Gbit/s; boosted PACE; channel state information; coherent-optical orthogonal frequency division multiplexing; laser phase noise; polarization division multiplexing; polarization mode dispersion; reduced-guard-interval; training symbols aided channel equalizer; Bit error rate; Channel estimation; Complexity theory; Equalizers; Laser noise; OFDM; Phase noise; Orthogonal frequency division multiplexing; pilot-aided channel equalizer; polarization division multiplexing;
  • fLanguage
    English
  • Journal_Title
    Photonics Technology Letters, IEEE
  • Publisher
    ieee
  • ISSN
    1041-1135
  • Type

    jour

  • DOI
    10.1109/LPT.2013.2278994
  • Filename
    6583341