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Semi-Global Filtering of Airborne LiDAR Data for Fast Extraction of Digital Terrain Models

机译:机载LiDAR数据的半全局滤波以快速提取数字地形模型

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Automatic extraction of ground points, called filtering, is an essential step in producing Digital Terrain Models from airborne LiDAR data. Scene complexity and computational performance are two major problems that should be addressed in filtering, especially when processing large point cloud data with diverse scenes. This paper proposes a fast and intelligent algorithm called Semi-Global Filtering (SGF). The SGF models the filtering as a labeling problem in which the labels correspond to possible height levels. A novel energy function balanced by adaptive ground saliency is employed to adapt to steep slopes, discontinuous terrains, and complex objects. Semi-global optimization is used to determine labels that minimize the energy. These labels form an optimal classification surface based on which the points are classified as either ground or non-ground. The experimental results show that the SGF algorithm is very efficient and able to produce high classification accuracy. Given that the major procedure of semi-global optimization using dynamic programming is conducted independently along eight directions, SGF can also be paralleled and sped up via Graphic Processing Unit computing, which runs at a speed of approximately 3 million points per second.
机译:从机载LiDAR数据生成数字地形模型中,自动提取地面点(称为滤波)是必不可少的步骤。场景复杂性和计算性能是过滤中应解决的两个主要问题,尤其是在处理具有不同场景的大型点云数据时。本文提出了一种称为半全局过滤(SGF)的快速智能算法。 SGF将过滤建模为标签问题,其中标签对应于可能的高度级别。通过自适应地面显着性平衡的新型能量函数可用于适应陡坡,不连续地形和复杂物体。半全局优化用于确定使能量最小化的标签。这些标签形成一个最佳的分类表面,基于该表面可以将点分类为地面或非地面。实验结果表明,SGF算法非常有效,能够产生较高的分类精度。鉴于使用动态编程进行半全局优化的主要过程是沿八个方向独立进行的,因此SGF还可以通过图形处理单元计算进行并行和加速,图形处理单元的计算速度约为每秒300万点。

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