首页> 外文期刊>International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences >MESH MODELLING OF 3D POINT CLOUD FROM UAV IMAGES BY POINT CLASSIFICATION AND GEOMETRIC CONSTRAINTS
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MESH MODELLING OF 3D POINT CLOUD FROM UAV IMAGES BY POINT CLASSIFICATION AND GEOMETRIC CONSTRAINTS

机译:通过点分类和几何约束对无人机图像中的3D点云进行网格建模

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The point cloud generated by multiple image matching is classified as an unstructured point cloud because it is not regularly point spaced and has multiple viewpoints. The surface reconstruction technique is used to generate mesh model using unstructured point clouds. In the surface reconstruction process, it is important to calculate correct surface normals. The point cloud extracted from multi images contains position and color information of point as well as geometric information of images used in the step of point cloud generation. Thus, the surface normal estimation based on the geometric constraints is possible. However, there is a possibility that a direction of the surface normal is incorrectly estimated by noisy vertical area of the point cloud. In this paper, we propose an improved method to estimate surface normals of the vertical points within an unstructured point cloud. The proposed method detects the vertical points, adjust their normal vectors by analyzing surface normals of nearest neighbors. As a result, we have found almost all vertical points through point type classification, detected the points with wrong normal vectors and corrected the direction of the normal vectors. We compared the quality of mesh models generated with corrected surface normals and uncorrected surface normals. Result of comparison showed that our method could correct wrong surface normal successfully of vertical points and improve the quality of the mesh model.
机译:由多个图像匹配生成的点云被归类为非结构化点云,因为它没有规则的点距并且具有多个视点。表面重建技术用于使用非结构化点云生成网格模型。在表面重建过程中,计算正确的表面法线很重要。从多个图像中提取的点云包含点的位置和颜色信息以及在点云生成步骤中使用的图像的几何信息。因此,基于几何约束的表面法线估计是可能的。但是,有可能通过点云的嘈杂垂直区域错误地估计了表面法线的方向。在本文中,我们提出了一种改进的方法来估计非结构化点云中垂直点的表面法线。所提出的方法可以检测垂直点,并通过分析最近邻居的表面法线来调整其法线向量。结果,我们通过点类型分类发现了几乎所有垂直点,检测了法向向量错误的点,并校正了法向向量的方向。我们将生成的网格模型的质量与已校正的表面法线和未校正的表面法线进行了比较。比较结果表明,该方法可以成功校正垂直点的错误表面法线,提高了网格模型的质量。

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