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Ground and building extraction from LiDAR data based on differential morphological profiles and locally fitted surfaces

机译:基于差分形态轮廓和局部拟合表面从LiDAR数据中提取地面和建筑物

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摘要

This paper proposes a new framework for ground extraction and building detection in LiDAR data. The proposed approach constructs the connectivity of a grid over the LiDAR point-cloud in order to perform multi-scale data decomposition. This is realised by forming a top-hat scale-space using differential morphological profiles (DMPs) on points' residuals from the approximated surface. The geometric attributes of the contained features are estimated by mapping characteristic values from DMPs. Ground definition is achieved by using features' geometry, whilst their surface and regional attributes are additionally considered for building detection. A new algorithm for local fitting surfaces (LoFS) is proposed for extracting planar points. Finally, transitions between planar ground and non-ground regions are observed in order to separate regions of similar geometrical and surface properties but different contexts (i.e. bridges and buildings). The methods were evaluated using ISPRS benchmark datasets and show superior results in comparison to the current state-of-the-art.
机译:本文提出了一种新的LiDAR数据地面提取和建筑物检测框架。所提出的方法在LiDAR点云上构建网格的连通性,以执行多尺度数据分解。这是通过在近似表面上的点残差上使用差分形态学轮廓(DMP)形成礼帽式比例空间来实现的。通过映射DMP的特征值来估计所包含特征的几何属性。地面定义是通过使用要素的几何来实现的,而建筑物的检测还需要考虑其表面和区域属性。提出了一种新的局部拟合曲面算法(LoFS),用于提取平面点。最后,观察到平面地面区域和非地面区域之间的过渡,以分离具有相似几何和表面特性但背景不同的区域(即桥梁和建筑物)。使用ISPRS基准数据集对这些方法进行了评估,与当前的最新技术相比,这些方法显示出了优异的结果。

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