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A unified framework for performance evaluation over generalized fading channels

Author

Listed:
  • Osamah S. Badarneh

    (University of Tabuk)

  • Taimour Aldalgamouni

    (Jordan University of Science and Technology)

  • Fares S. Almehmadi

    (University of Tabuk)

Abstract

In this paper, we present a unified framework to analyze the performance of the average bit error probability (BEP) and the outage probability over generalized fading channels. Specifically, we assume that the probability density function (PDF) of the instantaneous signal-to-noise ratio $$\zeta $$ ζ is given by the product of: power function, exponential function, and the modified Bessel function of the first kind, i.e., $$f_{\zeta }(\zeta )=\zeta ^{\lambda -1}exp\left( -a\zeta ^{\beta }\right) I_{v}\left( b\zeta ^{\beta }\right) $$ f ζ ( ζ ) = ζ λ - 1 e x p - a ζ β I v b ζ β . Based on this PDF, we obtain a novel closed-form expression for the average BEP over such channels perturbed by an additive white generalized Gaussian noise (AWGGN). Note that other well-known noise types can be deduced from the AWGGN as special cases such as Gaussian noise, Laplacian noise, and impulsive noise. Furthermore, we obtain a novel closed-form expression for the outage probability. As an example of such channels, and without loss of generality, we analyze the performance of the average BEP and the outage probability over the $$\eta $$ η – $$\mu $$ μ fading channels. Analytical results accompanied with Monte-Carlo simulations are provided to validate our analysis.

Suggested Citation

  • Osamah S. Badarneh & Taimour Aldalgamouni & Fares S. Almehmadi, 2017. "A unified framework for performance evaluation over generalized fading channels," Telecommunication Systems: Modelling, Analysis, Design and Management, Springer, vol. 64(4), pages 669-678, April.
  • Handle: RePEc:spr:telsys:v:64:y:2017:i:4:d:10.1007_s11235-016-0199-6
    DOI: 10.1007/s11235-016-0199-6
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    Cited by:

    1. Osamah S. Badarneh & Fares S. Almehmadi & Taimour Aldalgamouni, 2018. "On the application of the sum of generalized Gaussian random variables: maximal ratio combining," Telecommunication Systems: Modelling, Analysis, Design and Management, Springer, vol. 67(3), pages 415-422, March.

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