• DocumentCode
    1016044
  • Title

    Coding for Parallel Channels: Gallager Bounds and Applications to Turbo-Like Codes

  • Author

    Sason, Igal ; Goldenberg, Idan

  • Author_Institution
    Technion-Israel Inst. of Technol., Haifa
  • Volume
    53
  • Issue
    7
  • fYear
    2007
  • fDate
    7/1/2007 12:00:00 AM
  • Firstpage
    2394
  • Lastpage
    2428
  • Abstract
    The transmission of coded communication systems is widely modeled to take place over a set of parallel channels. This model is used for transmission over block-fading channels, rate-compatible puncturing of turbo-like codes, multicarrier signaling, multilevel coding, etc. New upper bounds on the maximum-likelihood (ML) decoding error probability are derived in the parallel-channel setting. We focus on the generalization of the Gallager-type bounds and discuss the connections between some versions of these bounds. The tightness of these bounds for parallel channels is exemplified for structured ensembles of turbo codes, repeat-accumulate (RA) codes, and some of their recent variations (e.g., punctured accumulate-repeat-accumulate codes). The bounds on the decoding error probability of an ML decoder are compared to computer simulations of iterative decoding. The new bounds show a remarkable improvement over the union bound and some other previously reported bounds for independent parallel channels. This improvement is exemplified for relatively short block lengths, and it is pronounced when the block length is increased. In the asymptotic case, where we let the block length tend to infinity, inner bounds on the attainable channel regions of modern coding techniques under ML decoding are obtained, based solely on the asymptotic growth rates of the average distance spectra of these code ensembles.
  • Keywords
    channel coding; fading channels; iterative decoding; linear codes; maximum likelihood decoding; probability; turbo codes; Gallager bounds; MBIOS channels; ML decoder; block length; block-fading channels; coded communication systems; distance spectrum; independent parallel channels; input-output weight enumerator; iterative decoding; linear codes; maximum-likelihood decoding error probability; memoryless binary-input output-symmetric channels; multicarrier signaling; multilevel coding; parallel channel coding; rate-compatible puncturing; repeat-accumulate codes; turbo-like codes; Computer simulation; Error probability; H infinity control; Helium; Iterative decoding; Linear code; Maximum likelihood decoding; OFDM; Turbo codes; Upper bound; Accumulate-repeat-accumulate codes; distance spectrum; input–output weight enumerator (IOWE); iterative decoding; linear codes; maximum-likelihood (ML) decoding; memoryless binary-input output-symmetric (MBIOS) channels; parallel channels.;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/TIT.2007.899543
  • Filename
    4252346