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A point cloud segmentation method based on vector estimation and color clustering

机译:基于矢量估计和颜色聚类的点云分割方法

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For automatic processing of point clouds, the segmentation is a key but difficult step. Many researchers have tried to develop segmentation methods including edge-based segmentation, surface-based segmentation and color-based segmentation, and so on. In this paper, we present a point data segmentation method based on normal vector estimation and color clustering. The main workflow of this method is made by calculating point normal vector, transforming vector into color, clustering color point and segmenting the raw points set at last. The proposed method combined the advantage of geo-metrical segmentation and color-metrical segmentation. It has been applied to LiDAR point data obtained by ALS (airborne laser scanner), the experiment result show that the segmentation method is promising.
机译:对于点云的自动处理,分割是关键但困难的一步。许多研究人员试图开发分割方法,包括基于边缘的分割,基于表面的分割和基于颜色的分割等。在本文中,我们提出了一种基于法向矢量估计和颜色聚类的点数据分割方法。该方法的主要工作流程是通过计算点法线向量,将向量转换为颜色,聚类色点并分割最后设置的原始点来完成的。所提出的方法结合了几何分割和颜色分割的优点。将其应用于通过ALS(机载激光扫描仪)获得的LiDAR点数据,实验结果表明该分割方法是有前途的。

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