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Processing of Synthetic Aperture Radar Images by the Boundary Contour System and Feature Contour System

机译:边界轮廓线系统和特征轮廓线系统处理合成孔径雷达图像

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摘要

An improved Boundary Contour System (BCS) and Feature Contour System (FCS) neural network model of preattentive vision is applied to two large images containing range data gathered by a synthetic aperture radar (SAR) sensor. The goal of processing is to make structures such as motor vehicles, roads, or buildings more salient and more interpretable to human observers than they are in the original imagery. Early processing by shunting center-surround networks compresses signal dynamic range and performs local contrast enhancement. Subsequent processing by filters sensitive to oriented contrast, including short-range competition and long-range cooperation, segments the image into regions. Finally, a diffusive filling-in operation within the segmented regions produces coherent visible structures. The combination of BCS and FCS helps to locate and enhance structure over regions of many pixels, without the resulting blur characteristic of approaches based on low spatial frequency filtering alone.
机译:一种改进的边界轮廓系统(BCS)和特征轮廓系统(FCS)的前视力神经网络模型被应用于包含合成孔径雷达(SAR)传感器收集的距离数据的两个大图像。处理的目的是使诸如机动车,道路或建筑物之类的结构比原始图像中的显着性和对人类观察者的解释性更高。分流中心周围网络的早期处理可压缩信号动态范围并执行局部对比度增强。随后对定向对比度敏感的滤镜进行的后续处理(包括近距离竞争和远距离合作)将图像划分为多个区域。最后,在分段区域内进行扩散填充操作会产生连贯的可见结构。 BCS和FCS的组合有助于在许多像素的区域上定位和增强结构,而不会产生仅基于低空间频率滤波的方法的模糊特性。

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