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Automated Method of Extracting Urban Roads Based on Region Growing from Mobile Laser Scanning Data

机译:基于移动激光扫描数据区域增长的自动提取城市道路的方法

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摘要

With the rapid development of three-dimensional point cloud acquisition from mobile laser scanning systems, the extraction of urban roads has become a major research focus. Although it has great potential for digital image processing, the extraction of roads using the region growing approach is still in its infancy. We propose an automated method of urban road extraction based on region growing. First, an initial seed is chosen under constraints relating to the Gaussian curvature, height and number of neighboring points, which ensures that the initial seed is located on a road. Then, the growing condition is determined by the angle threshold of the tangent plane of the seed point. Then, new seeds are selected based on the identified road points and their curvature. The method also includes a strategy for dealing with multiple discontinuous roads in a dataset. The result shows that the method can not only achieve high accuracy in urban road extraction but is also stable and robust.
机译:随着移动激光扫描系统三维点云采集技术的快速发展,城市道路的提取已成为研究的重点。尽管它具有数字图像处理的巨大潜力,但使用区域增长方法提取道路仍处于起步阶段。我们提出了一种基于区域增长的自动道路提取方法。首先,在与高斯曲率,高度和相邻点数有关的约束条件下选择初始种子,这确保了初始种子位于道路上。然后,通过种子点切线平面的角度阈值确定生长条件。然后,根据识别的道路点及其曲率选择新种子。该方法还包括处理数据集中多个不连续道路的策略。结果表明,该方法不仅在城市道路提取中具有较高的精度,而且稳定,鲁棒。

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