Novel autocorrelation based spectrum sensing methods for cognitive radios

Wang Jun, Bi Guangguo
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引用次数: 5

Abstract

In cognitive radios, energy detector is often considered for spectrum sensing in the literature. However, its performance deteriorates rapidly when noise power is fluctuating. In order to solve this problem, several autocorrelation based detection methods such as statistical covariances based (CAV) detection method and eigenvalue based (MME) detection method have been proposed. However, CAV detector is derived based on the assumption the noise is real and MME detector on the other hand is a little conservative. In this paper, two novel autocorrelation based spectrum sensing methods, which are correlation coefficients (CCE) based detection method and nonparametric autocorrelation (NAC) based detection method, have been proposed. CCE detector is suitable for complex Gaussian noise and NAC detector can distinguish correlated signals from arbitrary independent noise without knowing the noise type. Both CCE detector and NAC detector are also nonparametric. Simulation experiments are provided to show the validity of the proposed CCE detector and NAC detector.
基于自相关的认知无线电频谱感知新方法
在认知无线电中,能量探测器在文献中经常被认为是用于频谱感知。但当噪声功率波动时,其性能迅速下降。为了解决这一问题,人们提出了几种基于自相关的检测方法,如基于统计协方差(CAV)的检测方法和基于特征值(MME)的检测方法。然而,CAV检波器是在假设噪声真实的基础上推导出来的,而MME检波器则有点保守。提出了两种新的基于自相关的频谱感知方法,即基于相关系数(CCE)的检测方法和基于非参数自相关(NAC)的检测方法。CCE检测器适用于复杂高斯噪声,NAC检测器可以在不知道噪声类型的情况下将相关信号与任意独立噪声区分开来。CCE检测器和NAC检测器都是非参数的。仿真实验验证了所提出的CCE检测器和NAC检测器的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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