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Multi-function Radar Behavior State Detection Algorithm based on Bayesian Criterion

机译:基于贝叶斯准则的多功能雷达行为状态检测算法

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An iterative detection algorithm, based on fixed length sliding window, is proposed for multi-function phased array radar (MPAR) behavior recognition. First, characteristic parameters such as frequency, pulse width, pulse amplitude, pulse repetition interval and beam orientation were extracted. Then the pulse sequence is divided by sliding the appropriate fixed-length window. Finally, the conditional probability is calculated step by step based on Bayesian criterion, and the probability result is compared with the previous probability to determine whether it is a change point. This approach can be applied to radar behavior recognition without prior knowledge. The effectiveness of the proposed approach is demonstrated by simulation results.
机译:提出了一种基于固定长度滑动窗口的迭代检测算法,用于多功能相控阵雷达的行为识别。首先,提取特征参数,例如频率,脉冲宽度,脉冲幅度,脉冲重复间隔和光束方向。然后,通过滑动适当的固定长度窗口来划分脉冲序列。最后,根据贝叶斯准则逐步计算条件概率,并将概率结果与先前的概率进行比较,以确定它是否为变化点。这种方法可以在没有先验知识的情况下应用于雷达行为识别。仿真结果证明了该方法的有效性。

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