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An unorganized point cloud simplification based on boundary point extraction

机译:基于边界点提取的无组织点云简化

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In the reverse engineering, the dense and disordered point cloud data contain a huge number of redundancy, which inevitably leads to the significant challenges for the tasks of the subsequent data processing. This paper presents a single axis searching arithmetic to obtain the neighborhood information of a point cloud, and then based on all boundary points extracted and reserved, a non-uniform data reduction scheme, according to a specified curvature threshold and the proportion of reserved points in the k-nearest neighbors, is proposed. The experimental result shows that this approach has a strong ability for identifying boundary points, and can directly and effectively reduce the point cloud data, meanwhile keep the original geometric feature.
机译:在逆向工程中,密集且无序的点云数据包含大量的冗余,这不可避免地导致了后续数据处理任务的重大挑战。提出一种单轴搜索算法,获取点云的邻域信息,然后根据指定的曲率阈值和保留点的比例,基于提取和保留的所有边界点,提出一种非均匀数据约简方案。提出了k近邻。实验结果表明,该方法具有较强的边界点识别能力,可以直接有效地减少点云数据,同时保留原有的几何特征。

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