• DocumentCode
    1542512
  • Title

    Nonparametric density estimation and detection in impulsive interference channels. II. Detectors

  • Author

    Zabin, Serena M. ; Wright, George A.

  • Author_Institution
    Sch. of Electr. & Comput. Eng., Georgia Inst. of Technol., Atlanta, GA, USA
  • Volume
    42
  • Issue
    234
  • fYear
    1994
  • Firstpage
    1698
  • Lastpage
    1711
  • Abstract
    For pt. I see ibid., vol.42, no.2-4, p.1684-1697 (1994). Nonlinear processing significantly enhances detector performance in nongaussian noise relative to that of linear detectors. Several nonparametric detection schemes for impulsive noise channels are formulated using the nonparametric probability density estimators developed in Part I. The likelihood ratio test and the small-signal (locally optimum) nonlinearity provide the basis for the formulation of these nonparametric detection schemes. Several modifications to these basic strategies are used to compensate for inaccuracies in the density estimates. In particular, for the problem of detecting a known signal in impulsive noise, two modifications to the standard likelihood ratio test are considered: the first is adapted from robust statistics, whereas the second, the “L1-error-based” detector is specifically formulated for use with density estimates. Both schemes are found to perform close to the optimum likelihood ratio detector for a wide variety of impulsive noise densities. From the merits of these two tests, a new detection scheme that approximates the locally optimum nonlinearity is then developed. This detector, which uses the nonparametric density estimators developed in Part I, is shown to perform very well for the wide variety of impulsive and heavy tailed densities considered in the study. This nonparametric-density-estimate-based detector is also shown to outperform more conventional nonparametric detectors in impulsive noise
  • Keywords
    estimation theory; interference (signal); nonparametric statistics; parameter estimation; signal detection; L1-error-based detector; density estimates; detector performance; impulsive interference channels; impulsive noise channels; likelihood ratio test; linear detectors; locally optimum nonlinearity; nongaussian noise; nonparametric density detection; nonparametric density estimation; nonparametric probability density estimators; robust statistics; small-signal nonlinearity; Amplitude estimation; Analytical models; Computer aided software engineering; Envelope detectors; Interference channels; Performance analysis; Robustness; Statistics; Tail; Testing;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.1994.582877
  • Filename
    582877