• DocumentCode
    1444226
  • Title

    Exact analysis of postdetection combining for DPSK and NFSK systems over arbitrarily correlated Nakagami channels

  • Author

    Zhang, Q.T.

  • Author_Institution
    Dept. of Electr. Eng., Ryerson Polytech. Inst., Toronto, Ont., Canada
  • Volume
    46
  • Issue
    11
  • fYear
    1998
  • fDate
    11/1/1998 12:00:00 AM
  • Firstpage
    1459
  • Lastpage
    1467
  • Abstract
    Postdetection combining is a popular means to improve the bit error performance of DPSK and noncoherent FSK (NFSK) systems over fading channels. Nevertheless, the error performance of such systems in an arbitrarily correlated Nakagami environment is not available in the literature. The difficulty arises from inherent nonlinearity in noncoherent detection and from attempts to determine explicitly the probability density function of the total signal-to-noise ratio at the combiner output. We directly determine the error probability from the characteristic function of decision variables, resulting in closed-form solutions involving matrix differentiation. The performance calculation is further simplified by developing a recursive technique. The theory is illustrated by analyzing two feasible antenna arrays used in base stations for diversity reception, ending up with some findings of interest to system design
  • Keywords
    antenna arrays; correlation methods; differential phase shift keying; diversity reception; error statistics; fading channels; frequency shift keying; land mobile radio; matrix algebra; multipath channels; recursive estimation; signal detection; DPSK; NFSK; SNR; antenna arrays; base stations; bit error performance; characteristic function; closed-form solutions; combiner output; correlated Nakagami channels; decision variables; diversity reception; error performance; exact analysis; fading channels; matrix differentiation; mobile channels; multipath fading; noncoherent FSK; noncoherent detection; postdetection combining; probability density function; recursive technique; signal-to-noise ratio; system design; Antenna arrays; Antenna theory; Base stations; Closed-form solution; Differential quadrature phase shift keying; Error probability; Fading; Frequency shift keying; Probability density function; Signal to noise ratio;
  • fLanguage
    English
  • Journal_Title
    Communications, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0090-6778
  • Type

    jour

  • DOI
    10.1109/26.729390
  • Filename
    729390