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Blind eigenvalue-based spectrum sensing for cognitive radio networks

机译:基于盲特征值的认知无线电网络频谱感知

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摘要

Spectrum sensing for cognitive radio allows a secondary user to detect spectrum 'holes' and to opportunistically exploit this space for unlicensed communication. Blind spectrum sensing has the advantage that it does not require any knowledge of the transmitted signal, the channel or the noise-power, which are usually unknown at the receiver. In this study, the simulation and performance results for the maximum-minimum-eigenvalue and energy-minimum-eigenvalue sensing methods are presented for the Nakagami-m fading channel. The simulation and performance results are presented for the maximum-eigenvalue-to-trace method and the arithmetic-to-geometric-mean method together with the analytical expressions for the threshold, probability of detection and probability of false alarm. In addition, another algorithm, maximum-eigenvalue-geometric-mean is proposed and is investigated in terms of the analytical and simulation results for Nakagami-m fading channels. Improved performance is shown compared to the other schemes when the number of samples is decreased and when the number of cooperating users is increased such that the ratio of the latter to the former is positive and less than unity. Analytical expressions are also presented. The eigenvalue detection methods exhibit good performance in noisy environments and are matched by their bounds.
机译:用于认知无线电的频谱感测允许次要用户检测频谱的“空洞”,并有机会利用此空间进行未经许可的通信。盲频谱感测的优势在于,它不需要任何通常在接收机处都不知道的发射信号,信道或噪声功率的知识。在这项研究中,给出了Nakagami-m衰落信道的最大最小特征值和能量最小特征值检测方法的仿真和性能结果。给出了最大特征值跟踪法和算术几何平均法的仿真和性能结果,以及阈值,检测概率和虚警概率的解析表达式。此外,提出了另一种算法,即最大特征值几何均值,并根据中上米衰落信道的分析和仿真结果进行了研究。当样本数量减少和合作用户数量增加时,与其他方案相比,性能得到了提高,从而使后者与前者的比率为正且小于1。还提供了分析表达式。特征值检测方法在嘈杂的环境中表现出良好的性能,并与其边界相匹配。

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  • 来源
    《Communications, IET》 |2012年第11期|p.1388-1396|共9页
  • 作者

    Pillay N.; Xu H.J.;

  • 作者单位

    School of Electrical, Electronic and Computer Engineering, University of KwaZulu-Natal, Durban 4041, Republic of South Africa;

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