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Journal ArticleDOI

Multiple antenna spectrum sensing in cognitive radios

TLDR
The simulation results provide the available traded-off in using multiple antenna techniques for spectrum sensing and illustrates the robustness of the proposed GLR detectors compared to the traditional energy detector when there is some uncertainty in the given noise variance.
Abstract
In this paper, we consider the problem of spectrum sensing by using multiple antenna in cognitive radios when the noise and the primary user signal are assumed as independent complex zero-mean Gaussian random signals. The optimal multiple antenna spectrum sensing detector needs to know the channel gains, noise variance, and primary user signal variance. In practice some or all of these parameters may be unknown, so we derive the generalized likelihood ratio (GLR) detectors under these circumstances. The proposed GLR detector, in which all the parameters are unknown, is a blind and invariant detector with a low computational complexity. We also analytically compute the missed detection and false alarm probabilities for the proposed GLR detectors. The simulation results provide the available traded-off in using multiple antenna techniques for spectrum sensing and illustrates the robustness of the proposed GLR detectors compared to the traditional energy detector when there is some uncertainty in the given noise variance.

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Citations
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Spectrum Sensing Algorithms Based on Second-Order Statistics

Erik Axell
TL;DR: Cognitive radio is a new concept of reusing spectrum in an opportunistic manner that is motivated by recent measurements of spectrum utilization, showing unused resources in frequency.
Proceedings ArticleDOI

Performance limits of cooperative eigenvalue-based spectrum sensing under noise calibration uncertainty

TL;DR: A collaborative spectrum sensing system with a fusion center, which utilizes the eigenvalues of the sample covariance matrix for detection, is investigated and shows that a very large number of cooperating receivers is needed to enable detection at very low SNRs, which are customary in spectrum sensing.
Journal ArticleDOI

P-GLRT Algorithm for Cooperative Spectrum Sensing

TL;DR: An effective generalized likelihood ratio test (GLRT) based on power method (named as P-GLRT algorithm) is proposed for cooperative spectrum sensing and Simulation results show the proposed algorithm has better detection performance than other relevant methods.
Journal ArticleDOI

Novel Algorithms for Blind Sensing of Signals With Variable Bandwidths in Cognitive Radio

TL;DR: A blind algorithm for blindly sensing PU signals, of varying bandwidths, at very low SNRs, using a novel oblique projection-based novel method, which also exploits the correlation between the PU signals on the different receiver oversampled branches.
Proceedings ArticleDOI

An Eigenvalue-Based Multi-Antenna RFI Detection Algorithm

TL;DR: Simulations corroborate that the proposed eigenvalue-based blind RFI detector performs as good as a generalized likelihood ratio test (GLRT) detector and a matched subspace detector, respectively, fed with the knowledge of the signal of interest (SOI) channel, and of the SOI and RFI channels even under sample starved settings.
References
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Journal ArticleDOI

Cognitive radio: brain-empowered wireless communications

TL;DR: Following the discussion of interference temperature as a new metric for the quantification and management of interference, the paper addresses three fundamental cognitive tasks: radio-scene analysis, channel-state estimation and predictive modeling, and the emergent behavior of cognitive radio.
Book

Wireless Communications

Proceedings Article

Wireless communications

TL;DR: This book aims to provide a chronology of key events and individuals involved in the development of microelectronics technology over the past 50 years and some of the individuals involved have been identified and named.
Journal ArticleDOI

Detection of signals by information theoretic criteria

TL;DR: Simulation results that illustrate the performance of the new method for the detection of the number of signals received by a sensor array are presented.
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