DocumentCode
2094333
Title
The η−μ/IG distribution: A novel physical multipath/shadowing fading model
Author
Sofotasios, Paschalis C. ; Tsiftsis, Theodoros A. ; Ghogho, Mounir ; Wilhelmsson, Leif R. ; Valkama, Mikko
Author_Institution
Sch. of Electron. & Electr. Eng., Univ. of Leeds, Leeds, UK
fYear
2013
fDate
9-13 June 2013
Firstpage
5715
Lastpage
5719
Abstract
The aim of this work is the formulation and derivation of the η-μ/Inverse Gaussian composite distribution which corresponds to a physical fading model. The η-μ distribution is a generalized small-scale fading model which accounts effectively for non-line-of-sight scenarios and includes as special cases the widely known Nakagami-m, Rayleigh, Hoyt and one sided Gaussian distributions. Similarly, the inverse Gaussian (IG) distribution is a convenient model which was recently shown to characterize shadowing more efficiently than the widely used gamma distribution. To this effect, the proposed η-μ/IG model provides an overall efficient characterization of multipath and shadowing effects which typically occur simultaneously. The offered modelling accuracy is achieved thanks to the remarkable flexibility of its parameters. This is also verified by the fact that the proposed model is capable of providing good fittings to experimental data that correspond to realistic wireless communication scenarios while they include as special cases the widely known Nakagami-m/IG, Rayleigh/IG and Hoyt/IG composite fading models. Novel analytic expressions are derived for the envelope and power probability density function (pdf) of the η-μ/IG model. The derived expressions can be utilized in various studies in radio communications, free space optical communications and ultrasound imaging, among others. Indicatively, an analytic expression is derived for the outage probability (OP) of η-μ/IG fading channels.
Keywords
Gaussian distribution; Nakagami channels; Rayleigh channels; gamma distribution; multipath channels; η-μ distribution; Hoyt distribution; Hoyt-IG composite fading models; Nakagami-m distribution; Nakagami-m-IG composite fading models; Rayleigh distribution; Rayleigh-IG composite fading models; envelope function; free space optical communications; gamma distribution; generalized small-scale fading model; inverse Gaussian composite distribution; multipath effects; nonline-of-sight scenarios; one sided Gaussian distribution; outage probability; physical multipath fading model; physical shadowing fading model; power probability density function; radio communications; shadowing effects; ultrasound imaging; wireless communication scenarios; Digital communication; Mathematical model; Probability density function; Rayleigh channels; Shadow mapping; Wireless communication; η−μ distribution; generalized multipath fading; inverse Gaussian distribution; outage probability; shadowing;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications (ICC), 2013 IEEE International Conference on
Conference_Location
Budapest
ISSN
1550-3607
Type
conf
DOI
10.1109/ICC.2013.6655506
Filename
6655506
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