• DocumentCode
    789870
  • Title

    A union bound on the error probability of binary codes over block-fading channels

  • Author

    Zummo, Salam A. ; Yeh, Ping-Cheng ; Stark, Wayne E.

  • Author_Institution
    Electr. Eng. Dept., King Fahd Univ. of Pet. & Miner.s, Dhahran, Saudi Arabia
  • Volume
    54
  • Issue
    6
  • fYear
    2005
  • Firstpage
    2085
  • Lastpage
    2093
  • Abstract
    Block-fading is a popular channel model that approximates the behavior of different wireless communication systems. In this paper, a union bound on the error probability of binary-coded systems over block-fading channels is proposed. The bound is based on uniform interleaving of the coded sequence prior to transmission over the channel. The distribution of error bits over the fading blocks is computed. For a specific distribution pattern, the pairwise error probability is derived. Block-fading channels modeled as Rician and Nakagami distributions are studied. We consider coherent receivers with perfect and imperfect channel side information (SI) as well as noncoherent receivers employing square-law combining. Throughout the paper, imperfect SI is obtained using pilot-aided estimation. A lower bound on the performance of iterative receivers that perform joint decoding and channel estimation is obtained assuming the receiver knows the correct data and uses them as pilots. From this, the tradeoff between channel diversity and channel estimation is investigated and the optimal channel memory is approximated analytically. Furthermore, the optimal energy allocation for pilot signals is found for different channel memory lengths.
  • Keywords
    Nakagami channels; Rician channels; binary codes; block codes; channel coding; channel estimation; diversity reception; error statistics; iterative decoding; Nakagami distributions; Rician distributions; binary codes; block-fading channels; channel diversity; channel estimation; channel side information; coded sequence; decoding; error probability; iterative receivers; optimal channel memory; pairwise error probability; Binary codes; Channel estimation; Distributed computing; Error probability; Fading; Interleaved codes; Nakagami distribution; Pairwise error probability; Rician channels; Wireless communication; Block fading; Nakagami; Rayleigh; Rician; block interference; channel estimation; convolutional codes; interleaving; pilot-aided; union bound;
  • fLanguage
    English
  • Journal_Title
    Vehicular Technology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9545
  • Type

    jour

  • DOI
    10.1109/TVT.2005.858173
  • Filename
    1573875