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A multiresolution hierarchical classification algorithm for filtering airborne LiDAR data

机译:一种过滤机载LiDAR数据的多分辨率分级分类算法

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We presented a multiresolution hierarchical classification (MHC) algorithm for differentiating ground from non-ground LiDAR point cloud based on point residuals from the interpolated raster surface. MHC includes three levels of hierarchy, with the simultaneous increase of cell resolution and residual threshold from the low to the high level of the hierarchy. At each level, the surface is iteratively interpolated towards the ground using thin plate spline (TPS) until no ground points are classified, and the classified ground points are used to update the surface in the next iteration. 15 groups of benchmark dataset, provided by the International Society for Photogrammetry and Remote Sensing (ISPRS) commission, were used to compare the performance of MHC with those of the 17 other publicized filtering methods. Results indicated that MHC with the average total error and average Cohen's kappa coefficient of 4.11% and 86.27% performs better than all other filtering methods.
机译:我们提出了一种多分辨率分级分类(MHC)算法,用于基于插值栅格表面的点残差将地面与非地面LiDAR点云区分开。 MHC包括三个层次结构,同时从低层次结构到高层次结构同时增加了细胞分辨率和残留阈值。在每个级别上,使用薄板样条线(TPS)向地面迭代内插表面,直到未分类任何接地点为止,并且已分类的接地点用于在下一次迭代中更新表面。由国际摄影测量与遥感学会(ISPRS)委员会提供的15组基准数据集用于比较MHC和其他17种公开过滤方法的性能。结果表明,MHC的平均总误差和平均Cohen卡伯系数分别为4.11%和86.27%,比其他所有滤波方法都好。

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