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A HYBRID APPROACH TO EXTRACTION AND REFINEMENT OF BUILDING FOOTPRINTS FROM AIRBORNE LIDAR DATA

机译:一种杂交方法来提取和改进机载LIDAR数据建筑占地面积

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This work presents a combined bottom-up and top-down approach to extraction and refinement of building footprints from airborne LIDAR data. Building footprints are interesting for many applications in urban planning. The cadastral maps, however, may be limited for certain areas or not be updated frequently. Airborne laser scanning data is therefore considered by many people in the last decade as an important alternative data for change detection and update of building footprints. Laser scanning data of city scenes, however, often shows noise and incompleteness because of, e.g., the clutter by vegetation and the reflection of windows/waterlogged depressions on the roof. Results of the bottom-up detection may thus be limited to incomplete or irregular polygons. We employ 3D Hough transform to detect the building points. An improved joint multiple-plane detection scheme is proposed to find and label the laser points on multiple roof facets synchronously. The bottom-up processing provides not only a rough point segmentation but also additional 3D information, e.g., roof heights and horizontal ridges. Using these as priors, a top-down reconstruction is conducted via generative models. We consider the building footprint as an assembly of regular primitives. A statistical search by means of Reversible Jump Markov Chain Monte Carlo and Maximum A Posteriori estimation is implemented to find the optimal configuration of the footprint. By these means a robust and plausible reconstruction is guaranteed. First results on point clouds with various resolutions show the potential of this approach.
机译:这项工作介绍了从机载激光器数据提取和改进建筑占地面积的综合性和自上而下的方法。建筑占地面积对于城市规划中的许多应用都很有趣。然而,尸体映射可能限于某些区域或不经常更新。因此,空中激光扫描数据在过去十年中,许多人认为是改变检测和更新建筑足迹的重要替代数据。然而,城市场景的激光扫描数据通常显示出噪音和不完整性,因为例如,植被的杂乱和屋顶上的窗户/浇灌洼地的反射。因此,自下而上检测的结果可以限于不完全或不规则的多边形。我们采用3D Hough变换来检测建筑点。提出了一种改进的联合多平面检测方案,用于同步地查找和标记多个屋顶小平面上的激光点。自下而上的处理不仅提供粗略点分割,而且提供额外的3D信息,例如屋顶高度和水平脊。使用这些作为前沿,通过生成模型进行自上而下的重建。我们认为建筑足迹作为常规基元的组装。通过可逆跳转马尔可夫链蒙特卡罗和最大估计的统计搜索是实现了占地面积的最佳配置。通过这些意味着保证了强大而合理的重建。第一个结果在具有各种分辨率的点云上显示了这种方法的潜力。

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