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A reliable cooperative spectrum detection scheme in cognitive radio networks

机译:认知无线电网络中一种可靠的协作频谱检测方案

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Reliable spectrum detection of the primary user (PU) performs an important role in the cognitive radio network since it's the foundation of other operations. Spectrum sensing and cognitive signal recognition are two key tasks in the development of cognitive radio (CR) technology in both commercial and military applications. However, when the CR terminals receiving signals have little knowledge about the channel or signal types, these two tasks will become much more difficult. In this paper, we propose a reliable cooperative spectrum detection scheme, which combines the cooperative spectrum sensing with distributed cognitive signal recognition. A novel improved cooperative sensing algorithm is achieved by using a credibility weight factor and the ''tug-of-war'' rule, which is based on the double threshold detection and Dempster-Shafer theory, to determine whether the PU signals exist. In this scheme, cognitive signal recognition can be used to identify the signal type when the PU signal is present. During the cognitive signal recognition processing, the CR terminals make local classification of the received signals by using Daubechies5 wavelet transform and Fractional Fourier Transform, and send their recognition results to the globe decision making center. A distributed processing uses these cognitive terminals' local results to make final decisions under the Maximum Likelihood estimation algorithm. Simulation results show that the proposed method can achieve good sensing probability and recognition accuracy under the Additive White Gaussian Noise channel.
机译:主要用户(PU)的可靠频谱检测在认知无线电网络中起着重要作用,因为它是其他操作的基础。频谱感测和认知信号识别是商用和军事应用中认知无线电(CR)技术发展的两个关键任务。但是,当接收信号的CR终端对信道或信号类型知之甚少时,这两项任务将变得更加困难。在本文中,我们提出了一种可靠的协作频谱检测方案,该方案将协作频谱感知与分布式认知信号识别相结合。通过使用可信度权重因子和基于双重阈值检测和Dempster-Shafer理论的“拔河”规则来确定PU信号是否存在,从而实现了一种新颖的改进的协作感知算法。在此方案中,当存在PU信号时,认知信号识别可用于识别信号类型。在认知信号识别过程中,CR终端使用Daubechies5小波变换和分数阶傅里叶变换对接收到的信号进行局部分类,并将其识别结果发送给全球决策中心。分布式处理使用这些认知终端的本地结果在最大似然估计算法下做出最终决策。仿真结果表明,该方法在加性高斯白噪声信道下具有良好的感知概率和识别精度。

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