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Urban Road Network Extraction From Very High Resolution RGB Aerial Images And DSM Data

机译:从高分辨率RGB航拍图像和DSM数据中提取城市道路网络

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In this paper, we address the problem of automatic road network extraction in urban areas from very high resolution RGB aerial imagery and the Digital Surface Model (DSM) data. We use an extremely high-resolution image in which the road signature, such as cars, road lines, zebra crossings and the like, can be seen in detail. In this work, we first establish the location of the zebra crossing based on circle mask template matching in an aerial image. The location of these zebra crossings represents the starting point of the road and we can obtain the elevation from the corresponding DSM data. In the DSM data, the elevation of the road and the building is differ significantly; therefore, we expand the starting point based on a local thresholding and improve it using a seeded region growing, to create the initial road region quickly. A road line filter based on morphological opening operations are then carried out to produce the road line. The experimental result shows that the proposed method is run quick enough with good accuracy.
机译:在本文中,我们解决了从超高分辨率RGB航空影像和数字表面模型(DSM)数据中自动提取城市道路网的问题。我们使用非常高分辨率的图像,其中可以详细看到道路标志,例如汽车,道路线,斑马线等。在这项工作中,我们首先根据航空影像中的圆形蒙版模板匹配来确定斑马线的位置。这些斑马线的位置代表了道路的起点,我们可以从相应的DSM数据中获得高程。在DSM数据中,道路和建筑物的海拔高度明显不同;因此,我们基于局部阈值扩展起点,并使用种子区域增长对其进行改进,以快速创建初始道路区域。然后执行基于形态学开放操作的道路线过滤器以产生道路线。实验结果表明,该方法运行速度足够快,精度较高。

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