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A new two parameter CFAR ship detector in Log-Normal clutter

机译:对数正态杂波中的新型两参数CFAR船舶探测器

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Traditional CFAR detectors assume that the statistical model of the sea clutter as a certain distribution, and the models are established through parameter estimation using all the pixel samples in the background window, the modeling precision is influenced by interfering ship targets in the background window. As a result, the parameters will be over-estimated, which will cause a degradation of probability of detection (PD), especially in crowded harbors and busy shipping lines. In this paper, a new two parameter CFAR detector in Log-normal clutter is presented. The new two parameter CFAR detector uses log-normal model to fit the gray intensity distribution of the background clutter, by clutter truncation in the background window, the interfering ship targets are removed from the clutter sample, so Log-normal model is precisely built, Compared with traditional CFAR detectors, the parameter estimation is simple and precise, and ship targets in multiple target environment can be also detected. Under the same probability of false alarm (PFA), the proposed two parameter CFAR detector has the highest PD. The superiority of the proposed two parameter CFAR detector is validated on the multi-look Envisat-ASAR data.
机译:传统的CFAR探测器假定海杂波的统计模型具有一定的分布,并且使用背景窗口中的所有像素样本通过参数估计来建立模型,而建模精度受背景窗口中干扰船舶目标的影响。结果,参数将被高估,这将导致检测概率(PD)的降低,尤其是在拥挤的港口和繁忙的航运公司中。本文提出了一种新的对数正态杂波中的两参数CFAR检测器。新的两参数CFAR检测器使用对数正态模型来拟合背景杂波的灰度强度分布,通过在背景窗口中进行杂波截断,从杂波样本中去除了干扰的舰船目标,因此精确地建立了对数正态模型,与传统的CFAR探测器相比,参数估计简单,精确,并且还可以检测到多目标环境中的舰船目标。在相同的误报概率(PFA)下,所提出的两个参数CFAR检测器具有最高的PD。所提出的两参数CFAR检测器的优越性已在多视角Envisat-ASAR数据上得到验证。

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