• DocumentCode
    1418404
  • Title

    On first-order Markov modeling for the Rayleigh fading channel

  • Author

    Tan, Christopher C. ; Beaulieu, Norman C.

  • Author_Institution
    Calimetries Inc., Alameda, CA, USA
  • Volume
    48
  • Issue
    12
  • fYear
    2000
  • fDate
    12/1/2000 12:00:00 AM
  • Firstpage
    2032
  • Lastpage
    2040
  • Abstract
    Previous models for the received signal amplitude of the flat-fading channel that use first-order finite-state Markov chains are examined. The stochastic properties of a proposed first-order model based on these models are examined. The limitations of using an information theoretic metric, which is sometimes used to justify a first-order Markov chain as a sufficient model for very slowly fading channels, are discussed. A simple method of qualitatively comparing autocorrelation functions is instead proposed. The usefulness of the first-order Markov chain in representing the flat-fading channel is examined by looking at two specific problems in wireless system applications that represent two disparate cases. The first case involves analysis over a short duration of time, relative to the inverse of the normalized Doppler frequency, while the second involves analysis over a long duration of time. Contrary to previous reports, the results indicate that first-order Markov chains are not generally suitable for very slowly fading channels. Rather, first-order Markov chains can be suitable for very slowly fading applications, which require analysis over only a short duration of time
  • Keywords
    Doppler effect; Markov processes; Rayleigh channels; correlation methods; electromagnetic wave scattering; error correction codes; land mobile radio; radiocommunication; radiowave propagation; receiving antennas; ISORA model; Rayleigh fading channel; autocorrelation functions; block-error rates; error correction code; fade duration distributions; first-order Markov modeling; first-order finite-state Markov chains; flat-fading channel; information theoretic metric; inverse normalized Doppler frequency; isotropic scattering omnidirectional receiving antenna; long time duration; mobile radio channel; received signal amplitude; scattering propagation; short time duration; stochastic properties; very slowly fading channels; wireless system applications; Autocorrelation; Fading; Frequency; Gaussian processes; Markov processes; Rayleigh channels; Rayleigh scattering; Receiving antennas; Statistical distributions; Stochastic processes;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/26.891214
  • Filename
    891214