Title :
Projective-plane iteratively decodable block codes for WDM high-speed long-haul transmission systems
Author :
Djordjevic, Ivan B. ; Sankaranarayanan, Sundararajan ; Vasic, Bane V.
Author_Institution :
Univ. of Arizona, Tucson, AZ, USA
fDate :
3/1/2004 12:00:00 AM
Abstract :
Low-density parity-check (LDPC) codes are excellent candidates for optical network applications due to their inherent low complexity of both encoders and decoders. A cyclic or quasi-cyclic form of finite geometry LDPC codes simplifies the encoding procedure. In addition, the complexity of an iterative decoder for such codes, namely the min-sum algorithm, is lower than the complexity of a turbo or Reed-Solomon decoder. In fact, simple hard-decoding algorithms such as the bit-flipping algorithm perform very well on codes from projective planes. In this paper, the authors consider LDPC codes from affine planes, projective planes, oval designs, and unitals. The bit-error-rate (BER) performance of these codes is significantly better than that of any other known foward-error correction techniques for optical communications. A coding gain of 9-10 dB at a BER of 10-9, depending on the code rate, demonstrated here is the best result reported so far. In order to assess the performance of the proposed coding schemes, a very realistic simulation model is used that takes into account in a natural way all major impairments in long-haul optical transmission such as amplified spontaneous emission noise, pulse distortion due to fiber nonlinearities, chromatic dispersion, crosstalk effects, and intersymbol interference. This approach gives a much better estimate of the code´s performance than the commonly used additive white Gaussian noise channel model.
Keywords :
Reed-Solomon codes; block codes; encoding; error correction codes; error statistics; forward error correction; iterative decoding; optical fibre communication; optical noise; parity check codes; wavelength division multiplexing; 9 to 10 dB; Reed-Solomon decoder; WDM high-speed long-haul transmission systems; additive white Gaussian noise channel model; affine planes; amplified spontaneous emission noise; bit-error-rate; bit-flipping algorithm; chromatic dispersion; coding gain; crosstalk effects; decoders; encoders; fiber nonlinearities; finite geometries codes; forward-error correction; forward-error correction techniques; hard-decoding algorithms; intersymbol interferences; iteratively decodable block codes; low-density parity-check codes; min-sum algorithm; optical communications; optical network applications; oval designs; projective planes; projective-plane block codes; pulse distortion; turbo decoder; unitals; Bit error rate; Block codes; Crosstalk; Iterative algorithms; Iterative decoding; Optical distortion; Optical fiber networks; Optical noise; Parity check codes; Wavelength division multiplexing;
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2004.825768