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Stochastic approach to a rain attenuation time series synthesizer for heavy rain regions

Masoud, Mohebbi Nia and Din, Jafri and Lam, Hong Yin and Athanosios, D. Panagopoulos (2016) Stochastic approach to a rain attenuation time series synthesizer for heavy rain regions. International Journal of Electrical and Computer Engineering, 6 (5). pp. 2379-2386. ISSN 2088-8708

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Official URL: http://dx.doi.org/10.11591/ijece.v6i5.11741

Abstract

In this work, a new rain attenuation time series synthesizer based on the stochastic approach is presented. The model combines a well­known interestrate prediction model in finance namely the Cox­Ingersoll­Ross (CIR) model, and a stochastic differential equation approach to generate a longterm gamma distributed rain attenuation time series, particularly appropriate for heavy rain regions. The model parameters were derived from maximumlikelihood estimation (MLE) and Ordinary Least Square (OLS) methods. The predicted statistics from the CIR model with the OLS method are in good agreement with the measurement data collected in equatorial Malaysia while the MLE method overestimated the result. The proposed stochastic model could provide radio engineers an alternative solution for the design of propagation impairment mitigation techniques (PIMTs) to improve the Quality of Service (QoS) of wireless communication systems such as 5G propagation channel, in particular in heavy rain regions.

Item Type:Article
Additional Information:RADIS System Ref No:PB/2016/06937
Subjects:T Technology > TK Electrical engineering. Electronics Nuclear engineering
Divisions:Electrical Engineering
ID Code:68234
Deposited By: Haliza Zainal
Deposited On:01 Nov 2017 03:26
Last Modified:20 Nov 2017 08:52

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