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Digital Elevation Model from the Best Results of Different Filtering of a LiDAR Point Cloud

机译:基于LiDAR点云不同滤波的最佳结果的数字高程模型

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摘要

The LiDAR point clouds captured with airborne laser scanning provide considerably more information about the terrain surface than most data sources in the past.This rich information is not simply accessed and convertible to a high quality digital elevation model(DEM) surface.The aim of the study is to generate a homogeneous and high quality DEM with the relevant resolution, as a 2.5D surface.The study is focused on extraction of terrain(bare earth) points from a point cloud, using a number of different filtering techniques accessible by selected freeware.The proposed methodology consists of:(1) assessing advantages/disadvantages of different filters across the study area, (2) regionalization of the area according to the most suitable filtering results, (3) data fusion considering differently filtered point clouds and regions, and(4) interpolation with a standard algorithm.The resulting DEM is interpolated from a point cloud fused from partial point clouds which were filtered with multiscale curvature classification(MCC), hierarchical robust interpolation(HRI), and the LAStools filtering.An important advantage of the proposed methodology is that the selected landscape and datasets properties have been more holistically studied, with applied expert knowledge and automated techniques.The resulting highly applicable DEM fulfils geometrical(numerical), geomorphological(shape), and semantic quality properties.
机译:与过去的大多数数据源相比,通过机载激光扫描捕获的LiDAR点云提供了有关地形表面的大量信息,这些丰富的信息并非简单访问并可以转换为高质量的数字高程模型(DEM)表面。这项研究旨在生成具有相关分辨率的均匀且高质量的DEM(如2.5D曲面)。这项研究着重于通过使用一些可通过选定免费软件访问的不同过滤技术从点云中提取地形(裸露)点拟议的方法包括:(1)评估研究区域内不同过滤器的优缺点;(2)根据最合适的过滤结果对区域进行分区;(3)考虑不同过滤点云和区域的数据融合; (4)使用标准算法进行插值。将所得的DEM从点云进行插值,该点云由部分点云融合而成,这些点云经多点滤波尺度曲率分类(MCC),分层鲁棒插值(HRI)和LAStools滤波。该方法的一个重要优点是,通过应用专家知识和自动化技术,对所选景观和数据集属性进行了更全面的研究。高度适用的DEM具有几何(数字),地貌(形状)和语义质量属性。

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