DocumentCode :
2504781
Title :
Spectrum sensing in cooperative cognitive networks with partial CSI
Author :
Nevat, Ido ; Han, Chong ; Peters, Gareth W. ; Yuan, Jinhong
Author_Institution :
Wireless & Networking Tech. Lab., CSIRO, Sydney, NSW, Australia
fYear :
2011
fDate :
28-30 June 2011
Firstpage :
373
Lastpage :
376
Abstract :
Spectrum sensing is mandatory in Cognitive Radio (CR) systems, and is used in order to identify spectrum opportunities, and to guarantee that the secondary user does not cause unacceptable interference to the primary user. Since a single relay may be in a fading or shadowing, cooperative sensing among multiple relays which experience uncorrelated fading is required to guarantee reliable sensing performance. In this paper we develop efficient centralized statistical algorithms for cooperative spectrum sensing in a cooperative based cognitive radio network. In order to obtain the optimal decision rule based on Likelihood Ratio Test (LRT), the marginal likelihood under each hypothesis needs to be evaluated pointwise. These, however, cannot be obtained analytically due to the intractability of the multi-dimensional integrals. Instead, we present a low complexity algorithm to perform approximation of the marginal likelihood, based on the Laplace approximation. Performance is evaluated via numerical simulations and compared to lower bounds under perfect Channel State Information (CSI).
Keywords :
Laplace equations; approximation theory; cognitive radio; performance evaluation; statistical analysis; CR systems; CSI; LRT; Laplace approximation; centralized statistical algorithms; channel state information; cooperative cognitive networks; cooperative spectrum sensing; likelihood ratio test; multidimensional integrals; numerical simulations; performance evaluation; primary user; secondary user; Approximation methods; Cognitive radio; Relays; Scattering; Sensors; Signal to noise ratio; Bayesian methods; Cooperative spectrum sensing; Laplace method; Likelihood Ratio Test;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Statistical Signal Processing Workshop (SSP), 2011 IEEE
Conference_Location :
Nice
ISSN :
pending
Print_ISBN :
978-1-4577-0569-4
Type :
conf
DOI :
10.1109/SSP.2011.5967707
Filename :
5967707
Link To Document :
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