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Road Manhole Cover Delineation Using Mobile Laser Scanning Point Cloud Data

机译:使用流动激光扫描点云数据划线道路人孔封面描绘

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摘要

Periodical road manhole cover measurement is extremely important to ensure road safety and reduce traffic disasters. This letter proposes an effective method for delineating road manhole covers from mobile laser scanning point cloud data. To improve processing efficiency, first, road surface points are segmented and rasterized into georeferenced intensity images. Then, object-oriented patches are generated through superpixel segmentation and further fed to a convolutional capsule network classifier for manhole cover detection. Finally, manhole covers are accurately delineated through a marked point process of disks. Quantitative evaluations on three data sets show that an average completeness, correctness, quality, and F-1-measure of 0.965, 0.961, 0.929, and 0.963, respectively, are obtained. Comparative studies with three existing methods confirm that the proposed method performs superiorly in delineating manhole covers of varying conditions and on complex road surface environments.
机译:定期道路人孔覆盖测量对于确保道路安全性并减少交通灾害非常重要。这封信提出了一种从移动激光扫描点云数据中描绘道路人孔盖的有效方法。为了提高加工效率,首先,将道路表面点分段并将其光栅化成地理化的强度图像。然后,通过超顶链分割产生面向对象的贴片,并进一步馈送到卷积胶囊网络分类器,用于人孔覆盖检测。最后,通过磁盘的标记点过程准确地描绘了Manhole Covers。三个数据集的定量评估表明,获得了0.965,0.961,0.929和0.963分别的平均完整性,正确性,质量和F-1度量。具有三种现有方法的比较研究证实,该方法在划定了划定了不同条件和复杂的道路表面环境的人孔盖上的划清过程中。

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