• DocumentCode
    936281
  • Title

    Effect of coding in digital microcellular personal communication systems with co-channel interference, fading, shadowing, and noise

  • Author

    Linnartz, Jean-Paul M G ; Jong, Aart J T ; Prasad, Ramjee

  • Author_Institution
    Delft Univ. of Technol., Netherlands
  • Volume
    11
  • Issue
    6
  • fYear
    1993
  • fDate
    8/1/1993 12:00:00 AM
  • Firstpage
    901
  • Lastpage
    910
  • Abstract
    An analytical model is developed for the performance of a microcellular radio network in the presence of cochannel interference and additive white Gaussian noise. The modulation schemes considered are binary phase-shift keyed (BPSK), binary frequency-shift keyed (BFSK), and quadrature phase-shift keyed (QPSK). The multiple-access channel is statistically modeled by one Rician-distributed desired signal and several uncorrelated Rayleigh plus log-normally shadowed interfering signals, propagating according to dual path loss law with a turning point. The performance is determined in terms of bit error rate (BER), outage probability, block error probability, crosstalk probability, and spectrum efficiency, considering both fast and slow multipath fading. The effect of error correction codes, consisting of blocks with equal number of bits, on the performance parameters is also studied. The computational results show that the propagation loss exponents, Rician factor, turning point, and cell size all plays a major role in the design of an efficient microcellular system
  • Keywords
    cellular radio; digital radio systems; encoding; error correction codes; fading; frequency shift keying; personal communication networks; radiofrequency interference; white noise; BER; BFSK; BPSK; QPSK; Rician factor; Rician-distributed desired signal; additive white Gaussian noise; analytical model; binary frequency-shift keyed; binary phase-shift keyed; bit error rate; block error probability; cell size; cochannel interference; coding; crosstalk probability; digital microcellular personal communication systems; dual path loss law; error correction codes; log normal signals; microcellular radio network; multipath fading; multiple-access channel; outage probability; performance parameters; propagation loss exponents; quadrature phase-shift keyed; shadowing; spectrum efficiency; turning point; Additive white noise; Analytical models; Binary phase shift keying; Bit error rate; Interchannel interference; Phase modulation; Probability; Propagation losses; Radio network; Turning;
  • fLanguage
    English
  • Journal_Title
    Selected Areas in Communications, IEEE Journal on
  • Publisher
    ieee
  • ISSN
    0733-8716
  • Type

    jour

  • DOI
    10.1109/49.232299
  • Filename
    232299