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Radar Target Recognition by Probabilistic Filtering

机译:概率滤波的雷达目标识别

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The paper presents a new method of probabilistic filtering for radar target recognition. The classical Bayesian detector/estimator suffers from the insufficient information about target signature probability distributions and their a priory appearance probabilities. If the number of radar image objects to be classified is not known exactly the appeared unknown target may be wrong classified as one of the known targets. To eliminate this type of errors one can use the known probabilistic windows matched by shape to the recognition signature distributions. The combination of the probability window with a non-linear transform of the signature space is proposed in the paper. Such a combination forms a probabilistic filter. The probabilistic filter output is proportional to the likelihood probability of how the sensed object matches to its statistical model. The theoretical background of the probabilistic filtering method and its application to real X-band radar data are presented in the paper. The proposed method reduces the amount of a priory information required for the recognition and detects well the objects of the same nature independently from their size. For example, the probabilistic filter classifies well the different type of vegetation in the radar images.
机译:本文提出了一种用于雷达目标识别的概率滤波新方法。经典贝叶斯检测器/估计器遭受关于目标签名概率分布及其先验出现概率的信息不足。如果要分类的雷达图像对象的数量未知,则出现的未知目标可能会错误地分类为已知目标之一。为了消除这种类型的错误,可以使用形状与识别签名分布相匹配的已知概率窗口。提出了概率窗与签名空间的非线性变换相结合的方法。这样的组合形成了概率滤波器。概率滤波器输出与感测到的对象与其统计模型匹配的可能性概率成正比。介绍了概率滤波方法的理论背景及其在实际X波段雷达数据中的应用。所提出的方法减少了识别所需的先验信息的数量,并且独立于它们的大小很好地检测了相同性质的对象。例如,概率滤波器很好地分类了雷达图像中不同类型的植被。

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