• DocumentCode
    1458920
  • Title

    Rate-Adaptive Modulation and Coding for Optical Fiber Transmission Systems

  • Author

    Gho, Gwang-Hyun ; Kahn, Joseph M.

  • Volume
    30
  • Issue
    12
  • fYear
    2012
  • fDate
    6/15/2012 12:00:00 AM
  • Firstpage
    1818
  • Lastpage
    1828
  • Abstract
    We propose a rate-adaptive optical transmission scheme using variable-rate forward error correction (FEC) codes and variable-size constellations at a fixed symbol rate, quantifying how achievable bit rates vary with distance. The scheme uses serially concatenated Reed-Solomon codes and an inner repetition code to vary the code rate, combined with single-carrier polarization-multiplexed -ary quadrature amplitude modulation with variable and digital coherent detection. Employing , the scheme achieves a maximum bit rate of 200 Gb/s in a nominal 50-GHz channel bandwidth. A rate adaptation algorithm uses the signal-to-noise ratio (SNR) or the FEC decoder input bit-error ratio (BER) estimated by a receiver to determine the FEC code rate and constellation size that maximizes the information bit rate while yielding a target FEC decoder output BER and a specified SNR margin. We simulate single-channel transmission through long-haul fiber systems with or without inline chromatic dispersion compensation, incorporating numerous optical switches, evaluating the impact of fiber nonlinearity and bandwidth narrowing. With zero SNR margin, we achieve bit rates of 200/100/50 Gb/s over distances of 640/2080/3040 km and 1120/3760/5440 km in dispersion-compensated and dispersion-uncompensated systems, respectively. Compared to an ideal coding scheme, the proposed scheme exhibits a performance gap ranging from about 6.4 dB at 640 km to 7.6 dB at 5040 km in compensated systems, and from about 6.6 dB at 1120 km to 7.5 dB at 7600 km in uncompensated systems. We present limited simulations of three-channel transmission, showing that interchannel nonlinearities decrease achievable distances by about 10% and 7% for dispersion-compensated and dispersion-uncompensated systems, respectively.
  • Keywords
    Reed-Solomon codes; adaptive codes; adaptive modulation; concatenated codes; forward error correction; optical fibre networks; quadrature amplitude modulation; M-ary quadrature amplitude modulation; bandwidth 50 MHz; bit error ratio; bit rate 100 Gbit/s; bit rate 200 Gbit/s; bit rate 50 Gbit/s; concatenated Reed-Solomon codes; distance 1120 km; distance 2080 km; distance 3040 km; distance 3760 km; distance 5440 km; distance 640 km; forward error correction codes; inline chromatic dispersion compensation; inner repetition code; long-haul fiber systems; optical fiber transmission systems; rate adaptation algorithm; rate-adaptive modulation and coding; signal-to-noise ratio; single-carrier polarization-multiplexing; three-channel transmission; variable-size constellations; Bit rate; Decoding; Encoding; Forward error correction; Modulation; Optical fiber networks; Signal to noise ratio; Adaptive modulation; coherent detection; forward error correction (FEC); information rates; optical fiber communication; quadrature amplitude modulation; variable-rate codes;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2012.2189435
  • Filename
    6159047