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Multiantenna GLR Detection of Rank-One Signals With Known Power Spectral Shape Under Spatially Uncorrelated Noise

机译:空间不相关噪声下具有已知功率谱形状的秩一信号的多天线GLR检测

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We establish the generalized likelihood ratio (GLR) test for a Gaussian signal of known power spectral shape and unknown rank-one spatial signature in additive white Gaussian noise with an unknown diagonal spatial correlation matrix. This is motivated by spectrum sensing problems in dynamic spectrum access, in which the temporal correlation of the primary signal can be assumed known up to a scaling, and where the noise is due to an uncalibrated receive array. For spatially independent identically distributed (i.i.d.) noise, the corresponding GLR test reduces to a scalar optimization problem, whereas the GLR detector in the general non-i.i.d. case yields a more involved expression, which can be computed via alternating optimization methods. Low signal-to-noise ratio (SNR) approximations to the detectors are given, together with an asymptotic analysis showing the influence on detection performance of the signal power spectrum and SNR distribution across antennas. Under spatial rank-P conditions, we show that the rank-one GLR detectors are consistent with a statistical criterion that maximizes the output energy of a beamformer operating on filtered data. Simulation results support our theoretical findings in that exploiting prior knowledge on the signal power spectrum can result in significant performance improvement.
机译:我们在已知对角线空间相关矩阵的加性白高斯噪声中,建立了已知功率谱形状和未知秩一空间特征的高斯信号的广义似然比(GLR)测试。这是由动态频谱访问中的频谱感测问题引起的,在动态频谱访问中,可以假设已知主要信号的时间相关性,直到达到缩放比例为止,并且其中的噪声是由于未校准的接收阵列造成的。对于空间独立的均匀分布(i.i.d.)噪声,相应的GLR测试减少了一个标量优化问题,而一般的非i.d. case产生一个更复杂的表达式,可以通过交替优化方法来计算。给出了检测器的低信噪比(SNR)近似值,并进行了渐进分析,显示了对信号功率谱的检测性能和天线上SNR分布的影响。在空间等级P条件下,我们表明等级1 GLR检测器与统计标准一致,该统计标准可使对滤波数据进行操作的波束形成器的输出能量最大化。仿真结果支持了我们的理论发现,即利用信号功率频谱的先验知识可以显着改善性能。

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