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Airborne LiDAR data filtering based on geodesic transformations of mathematical morphology

机译:基于数学形态学的测地变换的机载LiDAR数据过滤

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摘要

The capability of acquiring accurate and dense three-dimensional geospatial information that covers large survey areas rapidly enables airborne light detection and ranging (LiDAR) has become a powerful technology in numerous fields of geospatial applications and analysis. LiDAR data filtering is the first and essential step for digital elevation model generation, land cover classification, and object reconstruction. The morphological filtering approaches have the advantages of simple concepts and easy implementation, which are able to filter non-ground points effectively. However, the filtering quality of morphological approaches is sensitive to the structuring elements that are the key factors for the filtering success of mathematical operations. Aiming to deal with the dependence on the selection of structuring elements, this paper proposes a novel filter of LiDAR point clouds based on geodesic transformations of mathematical morphology. In comparison to traditional morphological transformations, the geodesic transformations only use the elementary structuring element and converge after a finite number of iterations. Therefore, this algorithm makes it unnecessary to select different window sizes or determine the maximum window size, which can enhance the robustness and automation for unknown environments. Experimental results indicate that the new filtering method has promising and competitive performance for diverse landscapes, which can effectively preserve terrain details and filter non-ground points in various complicated environments
机译:快速准确地获取覆盖大调查区域的密集三维地理空间信息的能力,使机载光检测和测距(LiDAR)成为地理空间应用和分析众多领域中的一项强大技术。 LiDAR数据过滤是数字高程模型生成,土地覆盖分类和对象重建的第一步,也是必不可少的步骤。形态学滤波方法具有概念简单,易于实现的优点,能够有效地滤波非地面点。但是,形态学方法的过滤质量对结构元素很敏感,而结构元素是数学运算过滤成功的关键因素。为了解决对结构元素选择的依赖性,本文提出了一种基于数学形态学的测地变换的新型LiDAR点云滤波器。与传统形态转换相比,测地线转换仅使用基本结构元素,并在有限次迭代后收敛。因此,该算法无需选择不同的窗口大小或确定最大窗口大小,从而可以增强未知环境的鲁棒性和自动化程度。实验结果表明,这种新的滤波方法对于多种景观具有广阔的前景和竞争力,可以有效地保留地形细节,并在各种复杂环境中对非地面点进行滤波。

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