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BUILDING CLASSIFICATION USING AIRBORNE LIDAR DATA WITH SATELLITE SAR DATA

机译:使用机载激光雷达数据和卫星SAR数据进行分类

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In general, airborne photogrammetry and LiDAR measurements are applied to geometrical data acquisition for automated map generation and revision. However, attribute data acquisition and classification depend on manual editing works including ground surveys. On the other hand, SAR data have a possibility to automate the attribute data acquisition and classification. Thus, we focus on an integration of LiDAR and SAR data to achieve a frequent map update with attribute data acquisition. In this study, we use airborne LiDAR and satellite SAR data to classify buildings. Firstly, we generate a digital surface model (DSM) from point cloud acquired with airborne LiDAR. Secondary, the DSM is registered with a normalized radar cross section (NRCS) image calculated from SAR data. Thirdly, buildings are extracted from the DSM. Finally, the buildings are classified into several clusters in the DSM. We clarified that a combination of airborne LiDAR and satellite SAR data can extract and classify buildings in urban area.
机译:通常,机载摄影测量和LiDAR测量被应用于几何数据采集,以自动生成和修改地图。但是,属性数据的获取和分类取决于包括地面调查在内的手动编辑工作。另一方面,SAR数据有可能使属性数据的获取和分类自动化。因此,我们专注于LiDAR和SAR数据的集成,以实现具有属性数据采集的频繁地图更新。在这项研究中,我们使用机载LiDAR和卫星SAR数据对建筑物进行分类。首先,我们从机载LiDAR采集的点云中生成数字表面模型(DSM)。其次,DSM记录有根据SAR数据计算出的归一化雷达横截面(NRCS)图像。第三,从DSM中提取建筑物。最后,建筑物在DSM中分为几类。我们阐明了机载LiDAR和卫星SAR数据的结合可以提取和分类市区内的建筑物。

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