• DocumentCode
    1930505
  • Title

    Computationally efficient design of the MAE equalizer for binary signaling

  • Author

    Zhou, Weiwei ; Nelson, Jill K. ; Gupta, Ananya Sen

  • fYear
    2011
  • fDate
    6-9 Nov. 2011
  • Firstpage
    939
  • Lastpage
    943
  • Abstract
    This paper proposes a computationally efficient approach to designing the maximum asymptotic efficiency (MAE) equalizer, which minimizes bit error rate as the signal-to-noise ratio approaches infinity. The MAE equalizer is implemented as a tapped delay line and hence has the same runtime complexity as the simple MMSE linear equalizer. However, design of the MAE equalizer involves finding the minimum distance between two convex hulls. Its design complexity is exponential in the length of channel and equalizer, making it impractical for long channels. The proposed method exploits the relationship between the channel vectors and the convex hull formed by the noise-free channel outputs to design the MAE equalizer directly from the channel coefficients without requiring a search of the convex hull. The equalizer design complexity is reduced to O(N logN), where N is determined by the length of the channel and equalizer. Simulation results reveal the dramatic decrease in design complexity.
  • Keywords
    equalisers; error statistics; least mean squares methods; telecommunication channels; MMSE linear equalizer; binary signaling; bit error rate; channel coefficients; convex hull; equalizer design complexity; maximum asymptotic efficiency equalizer; signal-to-noise ratio; Algorithm design and analysis; Binary phase shift keying; Complexity theory; Equalizers; Multiuser detection; Quadratic programming; Vectors;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Signals, Systems and Computers (ASILOMAR), 2011 Conference Record of the Forty Fifth Asilomar Conference on
  • Conference_Location
    Pacific Grove, CA
  • ISSN
    1058-6393
  • Print_ISBN
    978-1-4673-0321-7
  • Type

    conf

  • DOI
    10.1109/ACSSC.2011.6190148
  • Filename
    6190148