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Analysis of Distribution Using Graphical Goodness of Fit for Airborne SAR Sea-Clutter Data

机译:利用机载SAR海杂波数据拟合的图形优度分析分布

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摘要

For radar target detection, the clutter distribution model needs to be identified first. The goodness of fit (GoF) between the original data and the assumed distribution can be used to choose the proper distribution model. Generally, the GoF is obtained using data histogram and theoretical distribution curve, and then the distribution model is judged via GoF. However, when the sample number is small, the histogram is rough and fluctuating, affecting the analysis of GoF. For the small sample, the graphical characteristic is obtained with the sample data to choose the most fitting distribution to the data in this paper. The graphical characteristic is acquired by a simpler process, that is, the original data are directly set as the test statistics, avoiding computing and sorting of other statistics. In this paper, the real airborne circular synthetic aperture radar data under different scan angles are analyzed using the GoF corresponding to histogram and graphical GoF, respectively. The results show that when the sea-clutter data histogram is close to two distributions, a more fitting distribution model may not be obtained by traditional GoF, but can be acquired by graphical representation. In addition, the sea data with different sight angles have different match properties. It is seen that the sea data are closer to the Rayleigh distribution in side-looking mode than that in big squint-angle mode, while the Weibull distribution and K distribution show equal fitting performance to sea clutter under variant radar sight angles.
机译:对于雷达目标检测,首先需要识别杂波分布模型。原始数据与假定分布之间的拟合优度(GoF)可用于选择适当的分布模型。通常,使用数据直方图和理论分布曲线获得GoF,然后通过GoF判断分布模型。但是,当样本数量较少时,直方图会变得粗糙且波动,从而影响GoF的分析。对于小样本,通过样本数据获得图形特征,以选择最适合本文数据的分布。图形特性是通过更简单的过程获得的,也就是说,将原始数据直接设置为测试统计量,从而避免了对其他统计量的计算和排序。在本文中,分别使用与直方图和图形GoF相对应的GoF来分析不同扫描角度下的真实机载圆形合成孔径雷达数据。结果表明,当海杂波数据直方图接近两个分布时,传统的GoF可能无法获得更合适的分布模型,而可以通过图形表示来获得。另外,具有不同视角的海洋数据具有不同的匹配属性。可以看出,在侧视模式下,海洋数据比在大斜视模式下更接近瑞利分布,而在不同的雷达视角下,威布尔分布和K分布对海杂波的拟合性能均相同。

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