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A Cooperative Spectrum Sensing Method Based on a Feature and Clustering Algorithm

机译:基于特征和聚类算法的协作频谱感知方法

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In order to improve the spectrum sensing performance, we propose a cooperative spectrum sensing method based on a feature and clustering algorithm in the case of a small number of secondary users participating in cooperative spectrum sensing. This method introduces order decomposition and recombination and interval decomposition and recombination based on stochastic matrix, which can increases the secondary users logically. Firstly, the signal matrix collected by the secondary users is split and recombined, and the corresponding covariance matrix are calculated respectively to obtain the corresponding signal features. Based on these features, we construct them as a feature vector. Further, we will use the clustering algorithm to train and perform spectrum sensing based on the trained classifier. In the experimental and results analysis section, the method described in this paper was simulated and the experimental results were further analyzed.
机译:为了提高频谱感测性能,我们提出了一种基于特征和聚类算法的协作频谱传感方法,其在参与协作频谱感测的少量次要用户的情况下。该方法引入了基于随机矩阵的顺序分解和重组和间隔分解和重组,这可以逻辑地增加二级用户。首先,由辅助用户收集的信号矩阵被分割和重组,并且分别计算相应的协方差矩阵以获得相应的信号特征。根据这些功能,我们将它们构建为特征向量。此外,我们将使用聚类算法基于训练的分类器训练并执行频谱感测。在实验和结果分析部分中,模拟了本文中描述的方法,进一步分析了实验结果。

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