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AUTOMATIC ROAD EXTRACTION BASED ON INTEGRATION OF HIGH RESOLUTION LIDAR AND AERIAL IMAGERY

机译:基于集成高分辨率激光雷达和空中图像的自动道路提取

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In recent years, the rapid increase in the demand for road information together with the availability of large volumes of high resolution Earth Observation (EO) images, have drawn remarkable interest to the use of EO images for road extraction. Among the proposed methods, the unsupervised fully-automatic ones are more efficient since they do not require human effort. Considering the proposed methods, the focus is usually to improve the road network detection, while the roads' precise delineation has been less attended to. In this paper, we propose a new unsupervised fully-automatic road extraction method, based on the integration of the high resolution LiDAR and aerial images of a scene using Principal Component Analysis (PCA). This method discriminates the existing roads in a scene; and then precisely delineates them. Hough transform is then applied to the integrated information to extract straight lines; which are further used to segment the scene and discriminate the existing roads. The roads' edges are then precisely localized using a projection-based technique, and the round corners are further refined. Experimental results demonstrate that our proposed method extracts and delineates the roads with a high accuracy.
机译:近年来,道路信息需求的快速增长与大量高分辨率的高分辨率接地观测(EO)图像的可用性,对使用EO图像进行了令人瞩目的道路提取。在拟议的方法中,无监督的全自动自动自动的方法,因为它们不需要人力努力。考虑到所提出的方法,重点通常是为了提高道路网络检测,而道路的精确描绘则较少。在本文中,我们提出了一种新的无监督全自动道路提取方法,基于使用主成分分析(PCA)的高分辨率激光雷达和空中图像的集成。该方法识别现有的现有道路;然后精确地描绘它们。然后将霍夫变换应用于综合信息以提取直线;进一步用于分割场景并鉴别现有道路。然后使用基于投影的技术精确地定位道路的边缘,并且圆角进一步精制。实验结果表明,我们提出的方法提取和描绘了高精度的道路。

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