• DocumentCode
    934734
  • Title

    An Efficient Algorithmic Lower Bound for the Error Rate of Linear Block Codes

  • Author

    Behnamfar, Firouz ; Alajaji, Fady ; Linder, Tamás

  • Author_Institution
    Nortel Networks, Ottawa
  • Volume
    55
  • Issue
    6
  • fYear
    2007
  • fDate
    6/1/2007 12:00:00 AM
  • Firstpage
    1093
  • Lastpage
    1098
  • Abstract
    We present an efficient algorithmic lower bound for the block error rate of linear binary block codes under soft maximum-likelihood decoding over binary phase-shift keying modulated additive white Gaussian noise channels. We cast the problem of finding a lower bound on the probability of a union as an optimization problem that seeks to find the subset that maximizes a recent lower bound - due to Kuai, Alajaji, and Takahara - that we will refer to as the KAT bound. The improved bound, which is denoted by LB-s, is asymptotically tight [as the signal-to-noise ratio (SNR) grows to infinity] and depends only on the code´s weight enumeration function for its calculation. The use of a subset of the codebook to evaluate the LB-s lower bound not only significantly reduces computational complexity, but also tightens the bound specially at low SNRs. Numerical results for binary block codes indicate that at high SNRs, the LB-s bound is tighter than other recent lower bounds in the literature, which comprise the lower bound due to Seguin, the KAT bound (evaluated on the entire codebook), and the dot-product and norm bounds due to Cohen and Merhav.
  • Keywords
    AWGN channels; binary codes; block codes; channel coding; linear codes; maximum likelihood decoding; phase shift keying; Alajaj; Cohen; KAT bound; Kuai; Merhav; Seguin; Takahar; binary phase-shift keying; block error rate; code´s weight enumeration function; computational complexity; efficient algorithmic lower bound; linear binary block codes; modulated additive white Gaussian noise channels; signal-to-noise ratio; soft maximum-likelihood decoding; Additive white noise; Block codes; Computational complexity; Error analysis; H infinity control; Maximum likelihood decoding; Modulation coding; Phase modulation; Phase shift keying; Signal to noise ratio; Additive white Gaussian noise (AWGN); binary phase-shift keying (BPSK); channel coding; linear block codes; lower bound; maximum-likelihood (ML) decoding; probability of error; weight spectrum of codes;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2007.898695
  • Filename
    4237452