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Radar signal sorting algorithm of k-means clustering based on data field

机译:基于数据场的k均值聚类雷达信号分类算法

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Radar signal sorting is one of the essential technologies in radar countermeasures reconnaissance system. Non-cooperative radar signal sorting without prior information has been a great challenge for radar countermeasures. This paper presents a k-means clustering radar signal sorting algorithm based on data field by introducing data field theory. Firstly potential value of all the data samples is calculated with the algorithm based on data field theory, and noise is eliminated by comparison of the calculated values, to find local maximum potential value. Then the sample data of the closest value to maximum is selected as the initial cluster center and the number of local maximum potential value as cluster number. Finally, the conventional k-means clustering algorithm is applied for clustering. The proposed method can eliminate noise points and automatically obtain initial cluster center and cluster number, which is suitable for non-cooperative radar without prior information. Simulation results verify the feasibility and effectiveness of the method.
机译:雷达信号分选是雷达对策侦察系统中必不可少的技术之一。没有先验信息的非合作雷达信号分类一直是雷达对策的巨大挑战。通过介绍数据场理论,提出了一种基于数据场的k均值聚类雷达信号分类算法。首先使用基于数据场理论的算法计算所有数据样本的电势值,并通过比较计算值消除噪声,以求出局部最大电势值。然后,选择最接近最大值的样本数据作为初始聚类中心,并选择局部最大潜在值的数目作为聚类数。最后,将传统的k均值聚类算法应用于聚类。所提出的方法可以消除噪声点,并自动获得初始聚类中心和聚类数,适用于没有先验信息的非合作雷达。仿真结果验证了该方法的可行性和有效性。

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