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Comparison of selected features for target detection in synthetic aperture radar imagery

机译:合成孔径雷达图像中用于目标检测的选定特征的比较

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摘要

Several methods are available that capture the statistics of radar imagery. The best features, in the sense of man-made target discrimination, are expected to be different for different types of natural background and for different objects of interest such as vehicles. We demonstrate that discrimination of natural background and man-made objects using low resolution synthetic aperture radar imagery is possible using singular value decomposition; several other simple features are also used to augment the feature vector. We use a subset of eigenvectors as features for target discrimination. The optimal set of features used to classify a region as "background clutter only" or "target region" is automatically chosen by a standard suboptimal feature selection algorithm. (C) 2000 Academic Press. [References: 7]
机译:有几种方法可以捕获雷达图像的统计信息。从人为目标识别的意义上说,最好的功能因不同类型的自然背景和不同的感兴趣物体(例如车辆)而有所不同。我们证明,使用奇异值分解可以使用低分辨率合成孔径雷达图像来识别自然背景和人造物体;其他几个简单特征也用于增强特征向量。我们使用特征向量的子集作为目标识别的特征。通过标准次优特征选择算法自动选择用于将区域分类为“仅背景杂波”或“目标区域”的最佳特征集。 (C)2000学术出版社。 [参考:7]

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