DocumentCode
1405
Title
Channel Model for Satellite Communication Links Above 10GHz Based on Weibull Distribution
Author
Kanellopoulos, Sotirios A. ; Kourogiorgas, Charilaos I. ; Panagopoulos, A.D. ; Livieratos, Spiros N. ; Chatzarakis, George E.
Author_Institution
Sch. of Electr. & Comput. Eng., Nat. Tech. Univ. of Athens, Athens, Greece
Volume
18
Issue
4
fYear
2014
fDate
Apr-14
Firstpage
568
Lastpage
571
Abstract
Modern satellite communication networks will employ frequencies above 10GHz. At these frequency bands, rain attenuation is the dominant fading mechanism. In this paper, a novel channel model, a synthesizer for generating rain attenuation time series for satellite links operating at 10GHz and above is presented. The proposed channel model modifies Maseng-Bakken (M-B) model since it generates rain attenuation time series that follow the Weibull distribution. The new stochastic dynamic model is based on the first-order Stochastic Differential Equations (SDEs) and considers rain attenuation induced on a slant path as a Weibull-based stochastic process. Moreover, the theoretical expressions for the computation of the exceedance probability of hitting time random variable are presented. The hitting time statistics may be employed for the optimum design of Fade Mitigation Techniques (FMTs). The synthesizer is verified in terms of the exceedance probability and the theoretical CCDF of hitting time comparing to these derived from the simulations in the numerical results section.
Keywords
Weibull distribution; differential equations; fading; rain; satellite links; time series; tropospheric electromagnetic wave propagation; CCDF; Maseng-Bakken model; Weibull distribution; channel model; fade mitigation techniques; first-order stochastic differential equations; frequency bands; hitting time random variable; hitting time statistics; probability; rain attenuation time series; satellite communication links; satellite communication networks; stochastic dynamic model; Attenuation; Rain; Satellite communication; Stochastic processes; Synthesizers; Time series analysis; Weibull distribution; Rain attenuation; Weibull distribution; hitting time statistics; satellite communications; stochastic differential equations;
fLanguage
English
Journal_Title
Communications Letters, IEEE
Publisher
ieee
ISSN
1089-7798
Type
jour
DOI
10.1109/LCOMM.2014.013114.131950
Filename
6746728
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