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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Eigenvalue-Based Sensing and SNR Estimation for Cognitive Radio in Presence of Noise Correlation
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Eigenvalue-Based Sensing and SNR Estimation for Cognitive Radio in Presence of Noise Correlation

机译:存在噪声相关性的认知无线电的基于特征值的感知和SNR估计

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摘要

Herein, we present a detailed analysis of an eigenvalue-based sensing technique in the presence of correlated noise in the context of a cognitive radio (CR). We use standard-condition-number (SCN)-based decision statistics based on asymptotic random matrix theory (RMT) for the decision process. First, the effect of noise correlation on eigenvalue-based spectrum sensing (SS) is analytically studied under both the noise-only and signal-plus-noise hypotheses. Second, new bounds for the SCN are proposed to achieve improved sensing in correlated noise scenarios. Third, the performance of fractional-sampling (FS)-based SS is studied, and a method to determine the operating point for the FS rate in terms of sensing performance and complexity is suggested. Finally, a signal-to-noise ratio (SNR) estimation technique based on the maximum eigenvalue of the covariance matrix of the received signal is proposed. It is shown that the proposed SCN-based threshold improves sensing performance in correlated noise scenarios, and SNRs up to 0 dB can be reliably estimated with a normalized mean square error (MSE) of less than $hbox{1}%$ in the presence of correlated noise without the knowledge of noise variance.
机译:本文中,我们在认知无线电(CR)的背景下,在存在相关噪声的情况下,对基于特征值的传感技术进行了详细分析。我们使用基于渐进随机矩阵理论(RMT)的基于标准条件数(SCN)的决策统计信息进行决策过程。首先,在纯噪声和信号加噪声假设下,分析研究了噪声相关对基于特征值的频谱感知(SS)的影响。其次,提出了SCN的新边界,以在相关噪声场景中实现改进的感测。第三,研究了基于分数采样(FS)的SS的性能,并提出了一种从感知性能和复杂度方面确定FS速率的工作点的方法。最后,提出了一种基于接收信号协方差矩阵的最大特征值的信噪比(SNR)估计技术。结果表明,所提出的基于SCN的阈值改善了相关噪声场景中的感测性能,并且在存在的情况下,归一化均方误差(MSE)小于$ hbox {1}%$时,可以可靠地估计高达0 dB的SNR。不知道噪声方差的相关噪声

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