• DocumentCode
    3126846
  • Title

    Spatially coupled ensembles universally achieve capacity under belief propagation

  • Author

    Kudekar, Shrinivas ; Richardson, Tom ; Urbanke, Rüdiger

  • Author_Institution
    Qualcomm, Bridgewater, NJ, USA
  • fYear
    2012
  • fDate
    1-6 July 2012
  • Firstpage
    453
  • Lastpage
    457
  • Abstract
    We investigate spatially coupled code ensembles. For transmission over the binary erasure channel, it was recently shown that spatial coupling increases the belief propagation threshold of the ensemble to essentially the maximum a-priori threshold of the underlying component ensemble. This explains why convolutional LDPC ensembles, originally introduced by Felström and Zigangirov, perform so well over this channel. We show that the equivalent result holds true for transmission over general binary-input memoryless output-symmetric channels. More precisely, given a desired error probability and a gap to capacity, we can construct a spatially coupled ensemble which fulfills these constraints universally on this class of channels under belief propagation decoding. In fact, most codes in that ensemble have that property. The quantifier universal refers to the single ensemble/code which is good for all channels if we assume that the channel is known at the receiver. The key technical result is a proof that under belief propagation decoding spatially coupled ensembles achieve essentially the area threshold of the underlying uncoupled ensemble. We conclude by discussing some interesting open problems.
  • Keywords
    belief networks; convolutional codes; decoding; error statistics; parity check codes; telecommunication channels; area threshold; belief propagation decoding; belief propagation threshold; binary erasure channel; binary-input memoryless output-symmetric channel; component ensemble; convolutional LDPC ensembles; error probability; maximum a-priori threshold; quantifier universal; receiver; spatially coupled code ensembles; uncoupled ensemble; Belief propagation; Convolutional codes; Couplings; Decoding; Encoding; Entropy; Parity check codes;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Information Theory Proceedings (ISIT), 2012 IEEE International Symposium on
  • Conference_Location
    Cambridge, MA
  • ISSN
    2157-8095
  • Print_ISBN
    978-1-4673-2580-6
  • Electronic_ISBN
    2157-8095
  • Type

    conf

  • DOI
    10.1109/ISIT.2012.6284229
  • Filename
    6284229