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Primary signal detection algorithms for spectrum sensing at low SNR over fading channels in cognitive radio

机译:在认知无线电中低SNR频谱感测的主要信号检测算法

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摘要

The generalized detector (GD) can be implemented at the low signal-to-noise ratio (SNR) in cognitive radio (CR) systems to improve the spectrum sensing performance under correlated antenna array elements. The weighted GD (WGD) and the generalized likelihood ratio test for GD (GLRT-GD) are proposed to be used for coarse spectrum sensing when the noise power is known and unknown, respectively. The GD optimal detection threshold is defined based on the minimum probability of error criterion for various fading channels, namely, the additive white Gaussian noise (AWGN), Nakagami-m, and Rayleigh fading channels. The performance of the proposed algorithms are compared with the spectrum sensing performance of the energy detector (ED), weighted ED (WED), maximum-minimum eigenvalue (MME) detector, generalized likelihood ratio test for ED (GLRT-ED), matched filter (MF), arithmetic to geometric mean (AGM) detector, scaled largest eigenvalue (SLE) detector, moment based detector (MBD), covariance based detector (CBD), and others. The simulation results demonstrate superiority in the spectrum sensing performance of the proposed algorithms in comparison with the above-mentioned detectors. For example, the GLRT-GD achieves the SNR gain equal to 1.2 dB, 4.0 dB, and 4.5 dB in comparison with GLRT-ED, MME, and GM detectors, respectively, at the probability of false alarm P-FA = 0.1. The WGD and GLRT-GD implementation allows us to achieve a considerable spectrum sensing performance improvement at small number of samples under the low SNR and the correlated antenna array elements. (C) 2019 Elsevier Inc. All rights reserved.
机译:广义检测器(GD)可以以认知无线电(CR)系统中的低信噪比(SNR)实现,以改善相关天线阵列元件下的频谱感测性能。提出了用于GD(GLRT-GD)的加权GD(WGD)和广义似然比试验用于分别已知噪声和未知的噪声功率时粗略频谱感测。基于各种衰落通道的误差标准的最小概率来定义GD最佳检测阈值,即添加性白色高斯噪声(AWGN),NAKAGAMI-M和瑞利衰落通道。将所提出的算法的性能与能量检测器(ED)的频谱感测性能进行比较,加权ED(WED),最大 - 最小特征值(MME)检测器,ED(GLRT-ED)的广义似然比测试,匹配过滤器(MF),几何平均值(AGM)检测器的算法,缩放最大的特征值(SLE)检测器,基于时刻的检测器(MBD),基于协方才的探测器(CBD)等。仿真结果表明,与上述探测器相比,所提出的算法的光谱感测性能的优越性。例如,与GLRT-ED,MME和GM检测器分别在误报P-FA = 0.1的概率下,GLRT-GD分别实现了等于1.2 dB,4.0dB和4.5 dB的SNR增益。 WGD和GLRT-GD实现允许我们在低SNR和相关天线阵列元件下少量样品实现相当大的频谱感测性能改进。 (c)2019 Elsevier Inc.保留所有权利。

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