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Detection of Building Regions Using Airborne LiDAR - a New Combination of Raster and Point Cloud Based GIS Methods

机译:空气传播激光雷达检测建筑物区域 - 基于光栅和点云的新组合

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In this paper, a new GIS workflow for fully automated building detection from airborne LiDAR data is introduced. The strengths of both raster and point cloud based methods are combined, in order to derive reliable building candidate regions serving as input for 3D building outline extraction and modeling algorithms. Input data are a normalized Digital Surface Model (nDSM) and a slope-adaptive echo ratio raster, which is a significant parameter for solid objects with low surface roughness, such as buildings. In contrast, high vegetation exhibits a local vertical distribution of laser echoes leading to a low echo ratio value. Potential building areas are detected in the raster domain using standard tools provided by GRASS GIS. Seed regions are identified by using a threshold on (i) object height >2.0 m and (ii) echo ratio >75%. The following growing of the seed regions provides that building walls, overhanging roof parts, and areas obstructed by high vegetation are included. Finally, non-building regions are removed by an object-based classification using a threshold on average laser point surface roughness. The presented candidate region detection achieves high completeness (>97%) with already moderate correctness (>70%). By applying an existing 3D building outline extraction and modeling algorithm, the applicability of the derived candidate building regions is demonstrated.
机译:本文介绍了一种新的GIS工作流,用于自动化LIDAR数据的全自动建筑物检测。组合了栅格和点云的方法的强度,以便导出作为3D构建轮廓提取和建模算法的输入的可靠构建候选地区。输入数据是归一化数字表面模型(NDSM)和斜率 - 自适应回波比光栅,这是具有低表面粗糙度的固体物体的重要参数,例如建筑物。相比之下,高植被表现出激光回波的局部垂直分布,导致低回波比值。使用草地GIS提供的标准工具在光栅域中检测到潜在的建筑区域。通过使用(i)物体高度> 2.0m和(ii)回波比> 75%的阈值来鉴定种子区域。随着种子区域的下列种植提供了建筑墙,悬垂屋顶部件和由高植被阻碍的区域。最后,通过使用平均激光点表面粗糙度的阈值,通过基于对象的分类除去非建筑区域。呈现的候选区域检测具有高度正确(> 70%)的高完整性(> 97%)。通过应用现有的3D构建轮廓提取和建模算法,证明了派生候选建筑物区域的适用性。

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