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Automatic Detection of Low-Rise Gable-Roof Building from Single Submeter SAR Images Based on Local Multilevel Segmentation

机译:基于局部多级分割的单亚米SAR图像自动检测低矮山墙屋顶建筑​​物

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Low-rise gable-roof buildings are a typical building type in shantytowns and rural areas of China. They exhibit fractured and complex features in synthetic aperture radar (SAR) images with submeter resolution. To automatically detect these buildings with their whole and accurate outlines in a single very high resolution (VHR) SAR image for mapping and monitoring with high accuracy, their dominant features, i.e., two adjacent parallelogram-like roof patches, are radiometrically and geometrically analyzed. Then, a method based on multilevel segmentation and multi-feature fusion is proposed. As the parallelogram-like patches usually exhibit long strip patterns, the building candidates are first located using long edge extraction. Then, a transition region (TR)-based multilevel segmentation with geometric and radiometric constraints is used to extract more accurate edge and roof patch features. Finally, individual buildings are identified based on the primitive combination and the local contrast. The effectiveness of the proposed approach is demonstrated by processing a complex 0.1 m resolution Chinese airborne SAR scene and a TerraSAR-X staring spotlight SAR scene with 0.23 m resolution in azimuth and 1.02 m resolution in range. Building roofs are extracted accurately and a detection rate of ~86% is achieved on a complex SAR scene.
机译:低矮的山墙屋顶建筑​​是中国棚户区和农村地区的典型建筑类型。它们在具有亚米级分辨率的合成孔径雷达(SAR)图像中显示出断裂和复杂的特征。为了在单个超高分辨率(VHR)SAR图像中自动检测这些建筑物的全部和准确轮廓,以进行高精度的制图和监视,需要对它们的主要特征(即两个相邻的平行四边形的屋顶斑块)进行辐射测量和几何分析。然后,提出了一种基于多层次分割和多特征融合的方法。由于平行四边形样片通常显示长条形图案,因此首先使用长边提取来定位候选建筑物。然后,使用具有几何和辐射约束的基于过渡区域(TR)的多级分割来提取更准确的边缘和屋顶补丁特征。最后,根据原始组合和局部对比来识别各个建筑物。通过处理一个复杂的0.1 m分辨率的中国机载SAR场景和一个TerraSAR-X凝视聚光SAR场景(在方位角上分辨率为0.23 m,在范围上分辨率为1.02 m)证明了该方法的有效性。准确提取建筑物的屋顶,在复杂的SAR场景中可达到约86%的检测率。

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