• DocumentCode
    1311466
  • Title

    Blind detection of equalization errors in communication systems

  • Author

    Dogançay, Kutluyil ; Kennedy, Rodney A.

  • Volume
    43
  • Issue
    2
  • fYear
    1997
  • fDate
    3/1/1997 12:00:00 AM
  • Firstpage
    469
  • Lastpage
    482
  • Abstract
    In adaptive channel equalization, transmitted symbol estimates at the equalizer output may be in error because of excessive channel noise, convergence of the equalizer to a “closed-eye” local minimum, or error propagation if the equalizer has a decision feedback structure. This paper is concerned with the detection of equalization errors (i.e., errors in transmitted symbol estimates) in a blindfolded manner whereby no direct access to the channel input is required. The detection problem is cast into a binary hypothesis testing framework. Assuming a linear communication channel that is time-invariant during the test interval, a relationship between the presence of equalization errors and time variations in the underlying linear model taking the transmitted symbol estimates to the equalizer input is established. Based on this relationship, a uniformly most powerful test is constructed to detect the presence of equalization errors in finite-length observations. Finite sample size and asymptotic detection performance of the test is studied. A method for estimating the equalization delay without direct access to the channel input is developed. The effectiveness of the test is illustrated by way of computer simulations
  • Keywords
    adaptive equalisers; adaptive signal detection; decision feedback equalisers; delays; error detection; telecommunication channels; adaptive channel equalization; asymptotic detection performance; binary hypothesis testing; blind detection; channel noise; closed-eye local minimum; communication systems; computer simulations; decision feedback structure; equalization delay estimation; equalization errors; equalizer convergence; equalizer input; equalizer output; error propagation; finite sample size; finite-length observations; linear communication channel; linear model; test interval; time variations; time-invariant channel; transmitted symbol estimates; uniformly most powerful test; Adaptive equalizers; Adaptive systems; Blind equalizers; Communication channels; Computer errors; Convergence; Decision feedback equalizers; Delay estimation; Output feedback; Testing;
  • fLanguage
    English
  • Journal_Title
    Information Theory, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9448
  • Type

    jour

  • DOI
    10.1109/18.556106
  • Filename
    556106