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A Frequency Domain Approach to Eigenvalue-Based Detection With Diversity Reception and Spectrum Estimation

机译:一种基于频域的基于特征值的分集接收和频谱估计的检测方法

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摘要

In this paper, we investigate a frequency domain approach for eigenvalue-based detection of a primary user, based on equal gain combining (EGC) and spectrum estimation with Bartlett’s method. This paper considers two techniques for eigenvalue detection which are Maximum Eigenvalue Detection (MED) and the Maximum-Minimum Eigenvalue (MME) detector. We exploit the eigenvalues that are associated with the Hermitian form representation of Bartlett’s estimate to assess the performance of the aforementioned eigenvalue techniques in the frequency domain. For each case, we quantify the performance based on the probabilities of false alarm and missed detection over Rayleigh and Rician fading. A bivariate Mellin transform approach is employed to obtain the probability distribution function for the ratio of the extreme eigenvalues under each hypothesis. All obtained formulas are validated via Monte-Carlo simulations, and the results give a clear insight into the performance of the investigated methods. In frequency domain, MED outperforms both the MME detector and Periodogram-based energy detection even in a worst case scenario of noise uncertainty, while the MME detector exhibits heavy-tailed statistical characteristics and thus its receiver operating characteristics tend to stay on the line of no-discrimination. The performance of MED is further enhanced by careful choice of combinations of the total length of the sensing frame and number of sub-slots.
机译:在本文中,我们研究了基于等增益合并(EGC)和采用Bartlett方法进行频谱估计的基于频域方法的主要用户特征检测。本文考虑了两种特征值检测技术,即最大特征值检测(MED)和最大最小特征值(MME)检测器。我们利用与巴特利特估计的埃尔米特形式表示法相关的特征值来评估上述特征值技术在频域中的性能。对于每种情况,我们都基于基于瑞利和里斯衰落的虚警和漏检的概率来量化性能。在每个假设下,采用双变量Mellin变换方法获得极端特征值之比的概率分布函数。所有获得的公式均通过Monte-Carlo仿真进行了验证,结果清楚地表明了所研究方法的性能。在频域中,即使在噪声不确定性最坏的情况下,MED的性能也优于MME检测器和基于周期图的能量检测,而MME检测器具有重尾统计特性,因此其接收器工作特性倾向于保持零噪声。 -歧视。通过仔细选择感测帧的总长度和子时隙数的组合,可以进一步提高MED的性能。

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