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UAV Photogrammetry-Based 3D Road Distress Detection

机译:基于无人机摄影测量的3D道路遇险检测

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The timely and proper rehabilitation of damaged roads is essential for road maintenance, and an effective method to detect road surface distress with high efficiency and low cost is urgently needed. Meanwhile, unmanned aerial vehicles (UAVs), with the advantages of high flexibility, low cost, and easy maneuverability, are a new fascinating choice for road condition monitoring. In this paper, road images from UAV oblique photogrammetry are used to reconstruct road three-dimensional (3D) models, from which road pavement distress is automatically detected and the corresponding dimensions are extracted using the developed algorithm. Compared with a field survey, the detection result presents a high precision with an error of around 1 cm in the height dimension for most cases, demonstrating the potential of the proposed method for future engineering practice.
机译:及时,适当地修复受损的道路对于道路维护至关重要,因此迫切需要一种高效,低成本的有效方法来检测路面遇险。同时,具有高灵活性,低成本和易操纵性的优点的无人机是道路状况监测的新的引人入胜的选择。本文利用无人机倾斜摄影测量法生成的道路图像重建道路三维(3D)模型,从中自动检测道路路面的遇险情况,并使用改进的算法提取相应的尺寸。与现场调查相比,该检测结果在大多数情况下都具有较高的精度,高度尺寸的误差约为1 cm,这表明了该方法在未来工程实践中的潜力。

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