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Classification Method of Uniform Circular Array Radar Ground Clutter Data Based on Chaotic Genetic Algorithm

机译:基于混沌遗传算法的均匀圆形阵列雷达地杂波数据分类方法

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摘要

The classification and recognition of radar clutter is helpful to improve the efficiency of radar signal processing and target detection. In order to realize the effective classification of uniform circular array (UCA) radar clutter data, a classification method of ground clutter data based on the chaotic genetic algorithm is proposed. In this paper, the characteristics of UCA radar ground clutter data are studied, and then the statistical characteristic factors of correlation, non-stationery and range-Doppler maps are extracted, which can be used to classify ground clutter data. Based on the clustering analysis, results of characteristic factors of radar clutter data under different wave-controlled modes in multiple scenarios, we can see: in radar clutter clustering of different scenes, the chaotic genetic algorithm can save 34.61% of clustering time and improve the classification accuracy by 42.82% compared with the standard genetic algorithm. In radar clutter clustering of different wave-controlled modes, the timeliness and accuracy of the chaotic genetic algorithm are improved by 42.69% and 20.79%, respectively, compared to standard genetic algorithm clustering. The clustering experiment results show that the chaotic genetic algorithm can effectively classify UCA radar’s ground clutter data.
机译:雷达杂波的分类和识别有助于提高雷达信号处理和目标检测的效率。为了实现均匀圆形阵列(UCA)雷达杂波数据的有效分类,提出了一种基于混沌遗传算法的地面杂波数据的分类方法。本文研究了UCA雷达地面杂波数据的特性,提取了相关性,非文具和范围 - 多普勒地图的统计特征因素,可用于分类地杂波数据。基于聚类分析,在多种情况下不同波控模式下雷达杂波数据的特征因素结果,我们可以看到:在不同场景的雷达杂波聚类中,混沌遗传算法可以节省34.61%的聚类时间并改善与标准遗传算法相比,分类准确度42.82%。在不同波控模式的雷达杂波聚类中,与标准遗传算法聚类相比,混沌遗传算法的时间性和准确性分别提高了42.69%和20.79%。聚类实验结果表明,混沌遗传算法可以有效地分类UCA雷达的地面杂波数据。

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