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Multi-source Signal Detection With Arbitrary Noise Covariance

机译:任意噪声协方差的多源信号检测

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Detecting the presence of signals in noise from multiple sources is a fundamental problem in statistical signal processing. In this paper, we consider multi-antenna signal detection when the noise covariance matrix is assumed to be arbitrary and unknown. We address this problem in the context of cognitive radio, where a multiple-primary-user detector is analyzed. This detector is known as Wilks' detector in statistics literature, which was derived under the generalized likelihood ratio criterion. We calculate the moments of Wilks' detector, which lead to simple and accurate approximate analytical formulae for the false alarm probability, the detection probability and the receiver operating characteristic. From the considered simulation settings, performance gain over existing detection algorithms is observed in scenarios with arbitrary and unknown noise correlation and multiple primary users.
机译:检测来自多个源的噪声中信号的存在是统计信号处理中的一个基本问题。在本文中,当噪声协方差矩阵被假定为任意且未知时,我们考虑多天线信号检测。我们在认知无线电的背景下解决了这个问题,在认知无线电中分析了多个主要用户检测器。该检测器在统计学文献中被称为威尔克斯检测器,它是根据广义似然比准则得出的。我们计算了威尔克斯探测器的力矩,从而得出了虚假概率,探测概率和接收机工作特性的简单而准确的近似解析公式。通过考虑的仿真设置,在具有任意和未知噪声相关性以及多个主要用户的情况下,可以观察到现有检测算法的性能提升。

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