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Spectrum-Sensing Algorithms for Cognitive Radio Based on Statistical Covariances

IEEE Transactions on Vehicular Technology · 2008 · Vol. 58(4) · pp. 1804–1815
Yonghong ZengYing‐Chang Liang

Abstract

Spectrum sensing, i.e., detecting the presence of primary users in a licensed spectrum, is a fundamental problem in cognitive radio. Since the statistical covariances of the received signal and noise are usually different, they can be used to differentiate the case where the primary user's signal is present from the case where there is only noise. In this paper, spectrum-sensing algorithms are proposed based on the sample covariance matrix calculated from a limited number of received signal samples. Two test statistics are then extracted from the sample covariance matrix. A decision on the signal presence is made by comparing the two test statistics. Theoretical analysis for the proposed algorithms is given. Detection probability and the associated threshold are found based on the statistical theory. The methods do not need any information about the signal, channel, and noise power <i xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">a</i> <i xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">priori</i> . In addition, no synchronization is needed. Simulations based on narrow-band signals, captured digital television (DTV) signals, and multiple antenna signals are presented to verify the methods.

Cognitive Radio Networks and Spectrum SensingBlind Source Separation TechniquesAdvanced Adaptive Filtering TechniquesCognitive radioAlgorithmCovariance matrixNoise (video)Statistical hypothesis testingComputer scienceStatistical powerA priori and a posterioriDetection theorySIGNAL (programming language)
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Cited by
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References
Cognitive radio: brain-empowered wireless communications
IEEE Journal on Selected Areas in Communications · 2005 · 11,929 citations
Sensing-Throughput Tradeoff for Cognitive Radio Networks
IEEE Transactions on Wireless Communications · 2008 · 2,989 citations
Energy detection of unknown deterministic signals
Proceedings of the IEEE · 1967 · 3,185 citations
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