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ROBUST LOCALLY WEIGHTED REGRESSION FOR GROUND SURFACE EXTRACTION IN MOBILE LASER SCANNING 3D DATA

机译:移动激光扫描3D数据中地面提取的稳健局部加权回归

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A new robust way for ground surface extraction from mobile laser scanning 3D point cloud data is proposed in this paper. Fitting polynomials along 2D/3D points is one of the well-known methods for filtering ground points, but it is evident that unorganized point clouds consist of multiple complex structures by nature so it is not suitable for fitting a parametric global model. The aim of this research is to develop and implement an algorithm to classify ground and non-ground points based on statistically robust locally weighted regression which fits a regression surface (line in 2D) by fitting without any predefined global functional relation among the variables of interest. Afterwards, the z (elevation)-values are robustly down weighted based on the residuals for the fitted points. The new set of down weighted z-values along with x (or y) values are used to get a new fit of the (lower) surface (line). The process of fitting and down-weighting continues until the difference between two consecutive fits is insignificant. Then the final fit represents the ground level of the given point cloud and the ground surface points can be extracted. The performance of the new method has been demonstrated through vehicle based mobile laser scanning 3D point cloud data from urban areas which include different problematic objects such as short walls, large buildings, electric poles, sign posts and cars. The method has potential in areas like building/construction footprint determination, 3D city modelling, corridor mapping and asset management.
机译:本文提出了一种从移动激光扫描3D点云数据的地面提取的新的强大方法。沿着2D / 3D点拟合多项式是过滤接地点的众所周知的方法之一,但是明显,未经组织的点云由自然组成多个复杂结构,因此不适合拟合参数全局模型。本研究的目的是开发和实现一种算法,基于统计上稳健的本地加权回归对地面和非接地点进行分类,该回归通过拟合拟合而没有感兴趣的变量之间的任何预定义的全局功能关系来拟合回归表面(2D线) 。之后,Z(升高) - 基于拟合点的残留物鲁棒地向上加权。新的一组向下加权Z值以及x(或y)值用于获得(下)表面(线)的新拟合。拟合和下加权的过程继续,直到两个连续拟合之间的差异微不足道。然后,最终装配表示给定点云的地面,并且可以提取地面点。通过从城市区域的基于车辆的移动激光扫描3D点云数据证明了新方法的性能,包括不同的有问题的物体,如短墙,大型建筑,电动杆,标志柱和汽车。该方法在建筑物/施工足迹确定,3D城市建模,走廊映射和资产管理等领域具有潜力。

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