首页> 外文会议>Asian conference on remote sensing;ACRS >BUILDING AREA DETECTION BASED ON THE PERCEPTUAL CUES OF SURFACE PATCHES EXTRACTED FROM AIRBORNE LIDAR POINT CLOUDS
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BUILDING AREA DETECTION BASED ON THE PERCEPTUAL CUES OF SURFACE PATCHES EXTRACTED FROM AIRBORNE LIDAR POINT CLOUDS

机译:基于从机载激光雷达点云中提取的表面补丁的感知线索的建筑区域检测

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In this study, we propose a fast approach to detect building areas using airborne LIDAR data. This approach consists of four main steps. First, we extract non-ground points from the LIDAR point cloud using a filtering method. We then generate surface patches from the extracted points using a robust segmentation method based on adaptive region growing processes. Each patch is specified with the planar parameters with the fitting error, all the assigned points to the patch, and the boundary points among them. We also compute the properties of each patch such as the area, roughness, mean height above a digital terrain model. Finally, based on such patch properties, we determine whether each patch belongs to a building or not. The detected building areas were compared with the real building areas manually detected from the aerial images corresponding to the LIDAR data. The comparison result shows that the proposed algorithm can classify building areas successfully with the detection rate of 83%.
机译:在这项研究中,我们提出了一种使用机载LIDAR数据检测建筑物区域的快速方法。该方法包括四个主要步骤。首先,我们使用滤波方法从LIDAR点云中提取非地面点。然后,我们使用基于自适应区域增长过程的鲁棒分割方法,从提取的点生成表面斑块。每个面块均由具有拟合误差的平面参数,面块的所有分配点以及其中的边界点指定。我们还计算每个补丁的属性,例如面积,粗糙度,数字地形模型上方的平均高度。最后,基于此类补丁属性,我们确定每个补丁是否属于建筑物。将检测到的建筑物区域与从对应于LIDAR数据的航拍图像手动检测到的真实建筑物区域进行比较。对比结果表明,该算法能够成功地对建筑物区域进行分类,检出率为83%。

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