DocumentCode :
3680435
Title :
Cognitive radio network as sensors: Low signal-to-noise ratio collaborative spectrum sensing
Author :
Feng Lin;Robert C. Qiu;Zhen Hu;Shujie Hou;Lily Li;James P. Browning;Michael C. Wicks
Author_Institution :
Cognitive Radio Institute, Department of Electrical and Computer Engineering, Center for Manufacturing Research, Tennessee Technological University, Cookeville, TN 38505, USA
fYear :
2012
Firstpage :
318
Lastpage :
322
Abstract :
This paper propose a function of covariance matrix based spectrum sensing approach for cognitive radio systems. The statistical covariance of signal and noise are usually different, so a binary hypothesis test on covariance matrix is employed to determine the existence of primary user. Collaborative sensing scenario is introduced for the proposed algorithm, in which each sensor only needs limited sample data for calculation and sends mediate result to fusion center. A performance comparison among different rational functions is provided, which shows different functions in this algorithm may have similar or distinct performance. So it is important to choose an appropriate function. The proposed algorithm has a reliable performance in very low signal-to-noise ratio (SNR) condition, and outperforms the Estimator-Correlator (EC) approach.
Keywords :
"Sensors","Covariance matrices","Cognitive radio","Signal to noise ratio","Collaboration","Yttrium"
Publisher :
ieee
Conference_Titel :
Waveform Diversity & Design Conference (WDD), 2012 International
Type :
conf
DOI :
10.1109/WDD.2012.7311279
Filename :
7311279
Link To Document :
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