DocumentCode :
555194
Title :
Eigenvalue ratio detection based on exact moments of smallest and largest eigenvalues
Author :
Shakir, Muhammad Z. ; Wuchen Tang ; Rao, Akhila ; Imran, Muhammad Ali ; Alouini, Mohamed-Slim
Author_Institution :
Div. of Phys. Sci. & Eng., KAUST, Thuwal, Saudi Arabia
fYear :
2011
fDate :
1-3 June 2011
Firstpage :
46
Lastpage :
50
Abstract :
Detection based on eigenvalues of received signal covariance matrix is currently one of the most effective solution for spectrum sensing problem in cognitive radios. However, the results of these schemes always depend on asymptotic assumptions since the close-formed expression of exact eigenvalues ratio distribution is exceptionally complex to compute in practice. In this paper, non-asymptotic spectrum sensing approach to approximate the extreme eigenvalues is introduced. In this context, the Gaussian approximation approach based on exact analytical moments of extreme eigenvalues is presented. In this approach, the extreme eigenvalues are considered as dependent Gaussian random variables such that the joint probability density function (PDF) is approximated by bivariate Gaussian distribution function for any number of cooperating secondary users and received samples. In this context, the definition of Copula is cited to analyze the extent of the dependency between the extreme eigenvalues. Later, the decision threshold based on the ratio of dependent Gaussian extreme eigenvalues is derived. The performance analysis of our newly proposed approach is compared with the already published asymptotic Tracy-Widom approximation approach.
Keywords :
Gaussian distribution; cognitive radio; covariance matrices; eigenvalues and eigenfunctions; signal detection; Copula; Gaussian approximation approach; Gaussian random variables; asymptotic Tracy-Widom approximation; bivariate Gaussian distribution function; cognitive radio; decision threshold; eigenvalue ratio detection; eigenvalues ratio distribution; probability density function; received signal covariance matrix; spectrum sensing; Approximation methods; Covariance matrix; Distribution functions; Eigenvalues and eigenfunctions; Gaussian approximation; Joints; Random variables; Copula; Spectrum sensing; eigenvalue ratio based detection; non-asymptotic Gaussian approximation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cognitive Radio Oriented Wireless Networks and Communications (CROWNCOM), 2011 Sixth International ICST Conference on
Conference_Location :
Osaka
Print_ISBN :
978-1-4577-0140-5
Type :
conf
Filename :
6030745
Link To Document :
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