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An automatic method for road extraction in rural and semi-urban areas starting from high resolution satellite imagery

机译:从高分辨率卫星图像开始的农村和半城市地区道路自动提取方法

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In this paper an efficient method for automatic road extraction in rural and semi-urban areas is presented. This work seeks the GIS update starting from color images and using preexisting vectorial information. As input data only the RGB bands of a satellite or aerial color image of high resolution is required. The system includes four different modules: data preprocessing; binary segmentation based on three levels of texture statistical evaluation; automatic vectorization by means of skeletal extraction; and finally a module for system evaluation. In the first module the color image is rectified and geo-referenced. The second module uses a new technique, named Texture Progressive Analysis (TPA), in order to obtain the segmented binary image. The TPA technique is developed in the evidence theory framework, and it consists in fusing information streaming from three different sources for the image. In the third module the obtained binary image is vectorized using an algorithm based on skeleton extraction techniques and morphological methods. The result is an extracted road network which is defined as a structural set of elements geometrically and topo-logically corrects. The fourth module is an evaluation of the procedure using a popular method. Experimental results show that this method is efficient in extracting and defining road networks from high resolution satellite and aerial imagery.
机译:本文提出了一种在农村和半城市地区自动提取道路的有效方法。这项工作寻求从彩色图像开始并使用预先存在的矢量信息进行GIS更新。作为输入数据,仅需要高分辨率的卫星或航空彩色图像的RGB波段。该系统包括四个不同的模块:数据预处理;基于三个级别的纹理统计评估进行二进制分割;通过骨骼提取自动矢量化;最后是系统评估模块。在第一个模块中,彩色图像经过校正和地理参考。第二个模块使用一种称为纹理渐进分析(TPA)的新技术,以获得分段的二进制图像。 TPA技术是在证据理论框架中开发的,它包括融合来自三个不同来源的图像信息流。在第三模块中,使用基于骨架提取技术和形态学方法的算法对获得的二进制图像进行矢量化处理。结果是提取的道路网络被定义为在几何和拓扑上校正的结构元素集。第四个模块是使用流行方法对过程进行评估。实验结果表明,该方法可以有效地从高分辨率卫星和航空影像中提取和定义道路网络。

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