• DocumentCode
    883325
  • Title

    Precise error-rate analysis of bandwidth-efficient BPSK in Nakagami fading and cochannel interference

  • Author

    Beaulieu, Norman C. ; Cheng, Julian

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Univ. of Alberta, Edmonton, Alta., Canada
  • Volume
    52
  • Issue
    1
  • fYear
    2004
  • Firstpage
    149
  • Lastpage
    158
  • Abstract
    The bit-error rate (BER) of bandlimited binary phase-shift keying in a fading and cochannel interference (CCI) environment is derived for the case of perfect coherent detection. The fading-and-interference model assumed is general and of interest for microcellular system studies. The model allows both desired signal and interfering signals to experience arbitrary amounts of fading severity. A precise BER expression is derived using a characteristic function method. Using this accurate analytical result, the impact of the interfering users´ fading severity on the desired user-error rate is examined. The BERs obtained under perfect coherent detection are also valid as lower performance bounds for practical realizable receivers where ideal coherent detection is difficult to implement. The error-rate performance of a novel bandwidth-efficient pulse shape is determined for the general fading and CCI environment. Analysis and numerical results show that the new pulse can provide better BER performance than the widely used raised-cosine pulse.
  • Keywords
    bandlimited communication; cochannel interference; error statistics; fading channels; microcellular radio; phase shift keying; signal detection; Nakagami fading channel; bandlimited binary phase-shift keying; bandwidth-efficient pulse shape; bit-error rate; characteristic function method; cochannel interference; fading-and-interference model; interfering user fading severity; microcellular systems; perfect coherent detection; precise error-rate analysis; user-error rate; wireless cellular systems; Binary phase shift keying; Bit error rate; Error analysis; Fading; Interchannel interference; Phase detection; Phase shift keying; Pulse shaping methods; Radiofrequency interference; Shape;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/TCOMM.2003.822187
  • Filename
    1264204