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Spectrum sensing of correlated subbands with colored noise in cognitive radios

机译:认知无线电中具有彩色噪声的相关子带的频谱感知

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In this paper, we consider the problem of wideband spectrum sensing by using the correlation among the observation samples in different subbands. The Primary User (PU) signal samples in occupied subbands are assumed to be zero-mean correlated Gaussian random variables and additive noise is modeled as colored zero-mean Gaussian random variables independent of the PU signal. It is also assumed that there is at least a minimum given number of subbands that are vacant of PU signals. First we derive the optimal detector and the Generalized Likelihood Ratio (GLR) detector for the case that the covariance matrix of PUs signal samples is unknown and the noise variance in the different subbands is known. Then, we propose an iterative algorithm for GLR test when both the covariance matrix of the PUs signal samples and the noise variances in the different subbands, are unknown. For analytical performance evaluation, we derive some closed-form expressions for detection and false alarm probabilities of the proposed detectors in low Signal to Noise Ratio (SNR) regime. The simulation results are further presented to compare the performance of the proposed detectors.
机译:在本文中,我们通过利用不同子带中观测样本之间的相关性来考虑宽带频谱感测问题。假定占用子带中的主要用户(PU)信号样本为零均值相关高斯随机变量,并且将附加噪声建模为独立于PU信号的有色零均值高斯随机变量。还假设至少有最小给定数量的子带不存在PU信号。首先,针对PU信号样本的协方差矩阵未知且不同子带的噪声方差已知的情况,我们推导了最佳检测器和广义似然比(GLR)检测器。然后,当PU信号样本的协方差矩阵和不同子带中的噪声方差都未知时,我们提出了一种用于GLR测试的迭代算法。为了进行分析性能评估,我们推导了一些封闭形式的表达式,用于在低信噪比(SNR)情况下建议的检测器的检测和虚警概率。进一步给出了仿真结果,以比较所提出的探测器的性能。

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