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AN ALGORITHM TO EXTRACT 3-D BUILDING ROOF POINTS FROM AIRBORNE LIDAR DATA

机译:一种从机载LIDAR数据中提取3-D建筑屋顶点的算法

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Building roof points in airborne LIDAR data are very important for 3-D building reconstruction. This paper will present an algorithm to automatically acquire the 3-D building roof points from airborne LIDAR data. Firstly, for roughly locating the area outlines of the roof(s) from pure LIDAR data, the aerial images with known orientation and original LIDAR data are used to generate the orthoimages. Then, the user indicates the area outlines of the building(s) on the orthoimages by mouse device. Afterwards, on the assumption that roofs are composed of either horizontal or slope planes, some better plane information, called GRID planes, are extracted by means of least squares fitting based on quad-tree segmentation from the LIDAR data in the area outlines. These GRID planes will be further merged according to the height constraints for providing SEED regions for plane growing by employing forward selection data snooping approach to merging the neighboring roof LIDAR points in order to extract the whole roof points. From the experiments, the efficiency of the proposed algorithm will be shown.
机译:在机载LIDAR数据楼顶点是3-d建筑重建非常重要。本文将介绍的算法来自动获取从机载激光雷达数据的3-d建筑物屋顶分。首先,对于大致从纯LIDAR数据定位所述屋顶的面积轮廓(一个或多个)中,用已知的取向和原始数据LIDAR空中图像被用于生成正射影像。然后,用户指示建筑物(一个或多个)上通过鼠标装置的正射影像的区域的轮廓。然后,在该屋顶由水平或倾斜的平面的假设下,一些更好的平面的信息,被称为网格平面中,通过最小二乘法拟合基于四叉树分割从在区域轮廓的LIDAR数据装置提取。这些网格飞机将根据针对平面采用正向选择数据探测方法,以提取整个屋顶点合并相邻的屋顶LIDAR点成长提供种子区的高度限制进一步合并。从实验中,该算法的效率将被显示。

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