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Ground Surveillance Radar Targets Classification Using Wald Sequential Test

机译:使用Wald序列测试的地面监视雷达目标分类

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In this research the Wald sequential test is applied for ground surveillance radar real signal classification. Central Doppler frequency and spectrum width around it are used as features for classification. The classification of signal from vehicle apart from all other classes is performed. For estimation of the probability density function, the Parzen method is used. Conducted results show that the Wald sequential test could be applied to classification of radar signals whose duration is 0.5 seconds, with average number of observation for signals that origin from vehicle 1.61, and for signals that origin from other classes 1.22.
机译:在这项研究中,Wald顺序测试用于地面监视雷达真实信号分类。中心多普勒频率及其周围的频谱宽度用作分类的功能。除所有其他类别外,对来自车辆的信号进行分类。为了估计概率密度函数,使用Parzen方法。进行的结果表明,Wald顺序测试可以应用于持续时间为0.5秒的雷达信号的分类,对来自车辆1.61的信号和来自其他1.22类别的信号的平均观测次数。

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