DocumentCode :
717999
Title :
An improved G-music algorithm for non-Gaussian noise condition direction-of-arrival estimation
Author :
Ahmadi, Mahmoud ; Yazdian, Ehsan ; Tadaion, Ali A.
Author_Institution :
EE Dept., Isfahan Univ. of Technol., Isfahan, Iran
fYear :
2015
fDate :
10-14 May 2015
Firstpage :
472
Lastpage :
477
Abstract :
Direction of arrival (DOA) estimation is one of the most important and widely used discussions within communication and radar systems. This paper aims to improve the DOA estimation using G-MUSIC (Multiple Signal Classification based on G-estimation) algorithm under noise types with heavy-tailed distributions such as impulsive noise conditions. Subspace-based DOA estimation methods, usually employ the maximum likelihood estimation of the covariance matrix and its eigenvalues and eigenvectors. However, the performance of this estimation and resulting the direction-of-arrival estimation degrade in non-Gaussian noise. In this paper we use the convex optimization methods to improve the DOA estimation algorithm, G-MUSIC, by modifying the eigenvector and eigenvalue estimation of the sample covariance matrix under non-Gaussian noise conditions. Simulation results confirm this performance improvement.
Keywords :
convex programming; covariance matrices; direction-of-arrival estimation; eigenvalues and eigenfunctions; maximum likelihood estimation; signal classification; DOA estimation method; G-estimation algorithm; convex optimization method; covariance matrix; direction-of-arrival estimation; eigenvalues and eigenvectors; improved G-MUSIC algorithm; maximum likelihood estimation; multiple signal classification; non-Gaussian noise condition; Arrays; Covariance matrices; Direction-of-arrival estimation; Eigenvalues and eigenfunctions; Estimation; Multiple signal classification; Noise;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Engineering (ICEE), 2015 23rd Iranian Conference on
Conference_Location :
Tehran
Print_ISBN :
978-1-4799-1971-0
Type :
conf
DOI :
10.1109/IranianCEE.2015.7146261
Filename :
7146261
Link To Document :
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