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AUTOMATIC GENERATION OF BUILDING MODELS IN DENSE URBAN AREAS USING AIRBORNE LIDAR AND AERIAL PHOTOGRAPH

机译:利用机载激光和航空照相技术自动生成密集城市区域中的建筑模型

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In this paper, an algorithm is proposed for automatically generating three-dimensional (3D) building models in dense urban areas. Automatic 3D building modeling in dense urban areas is challenging because, especially in Japan, houses that have slant roofs are located close to each other, and their heights are similar. For this case, difficulty in separating point clouds into individual buildings is an obstacle to modeling. To resolve this issue, the proposed algorithm uses the results of building segmentation from aerial photographs. Segmentation of buildings in urban areas, especially dense urban areas, by using remotely sensed images is also challenging because of the unclear boundaries between buildings and the shadows cast by neighboring buildings. The proposed algorithm successfully segments buildings from aerial photographs, including shadowed buildings in dense urban areas. The main factors in successful segmentation of shadowed roofs are (1) combination of different quantization results, (2) selection of buildings according to the rectangular index, and (3) edge completion by the inclusion of non-edge pixels that have a high probability of being edges. On the other hand, filtered airborne light detection and ranging (LiDAR) data are classified into small groups. By considering the segmented regions and the normals, models of actual building types-gable-roof, hip-roof, flat-roof and slant-roof buildings-are generated. To study the accuracy of the modeling, the proposed algorithm is applied to areas of Higashiyama ward, Kyoto, Japan. Owing to the information of building regions provided by segmentation, the modeling is successful even in dense urban areas. Therefore, the proposed algorithm is concluded to be effective in automatically generating building models in dense urban areas.
机译:本文提出了一种在密集城市地区自动生成三维(3D)建筑模型的算法。在人口稠密的城市地区,自动3D建筑物建模具有挑战性,因为尤其是在日本,屋顶倾斜的房屋彼此靠近,并且高度相似。对于这种情况,难以将点云分离为单独的建筑物是建模的障碍。为了解决这个问题,提出的算法使用了航空照片中建筑物分割的结果。由于建筑物之间的边界不清晰以及相邻建筑物所投射的阴影,使用遥感图像对市区(尤其是稠密的市区)中的建筑物进行分割也具有挑战性。所提出的算法成功地从航空照片中分割了建筑物,包括在稠密城市地区的阴影建筑物。阴影屋顶成功分割的主要因素是(1)不同量化结果的组合;(2)根据矩形索引选择建筑物;以及(3)通过包含具有高概率的非边缘像素来完成边缘成为边缘。另一方面,滤波后的机载光检测和测距(LiDAR)数据分为几类。通过考虑分割区域和法线,生成了实际建筑物类型的模型,包括山墙屋顶,臀部屋顶,平屋顶和斜屋顶建筑物。为了研究建模的准确性,将所提出的算法应用于日本京都东山区。根据分割提供的建筑区域信息,即使在人口稠密的城市地区,该建模也是成功的。因此,该算法被认为在稠密城市地区自动生成建筑模型方面是有效的。

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