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Robust Spectrum Sensing Based on Correlation for Cognitive Radio Networks With Uncalibrated Multiple Antennas

机译:基于认知无线电网络与未校准多个天线相关的鲁棒频谱感应

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In this letter, we consider the multiantenna spectrum sensing for correlated signal in a cognitive radio network, where uncalibrated multiple antennas are employed at the secondary user to detect the presence of the primary user (PU). Under such a scenario, we demonstrate that the correlation function matrices of the received signals differ between the null hypothesis and the alternative hypothesis, which can be leveraged to probe the state of PU. Based on this, a correlation-based local average variance (CLAV) detection method is proposed to exploit the correlated property of the primary signals. Also, its asymptotic distribution under the null hypothesis is derived with the aid of the central limit theorem, which enables us to theoretically obtain the decision threshold of the CLAV method. Finally, we carry out the simulation results to illustrate the superior performance of proposed method compared to the conventional methods.
机译:在这封信中,我们考虑关于认知无线电网络中的相关信号的多生态频谱感测,其中在辅助用户处采用未校准的多个天线来检测主用户的存在(PU)。 在这种情况下,我们证明所接收信号的相关函数矩阵在零假设和替代假设之间不同,这可以利用以探测PU的状态。 基于此,提出了一种基于相关的局部平均方差(CLAV)检测方法来利用主信号的相关性。 此外,借助于中央极限定理来推导出零假设下的渐近分布,这使我们能够理论地获得CLAV方法的判定阈值。 最后,我们进行了模拟结果,以说明与传统方法相比提出的方法的优越性。

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