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A Research of Road Centerline Extraction Algorithm from High Resolution Remote Sensing Images

机译:高分辨率遥感影像道路中心线提取算法研究

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Satellite remote sensing technology has become one of the most effective methods for land surface monitoring in recent years, due to its advantages such as short period, large scale and rich information. Meanwhile, road extraction is an important field in the applications of high resolution remote sensing images. An intelligent and automatic road extraction algorithm with high precision has great significance for transportation, road network updating and urban planning. The fuzzy c-means (FCM) clustering segmentation algorithms have been used in road extraction, but the traditional algorithms did not consider spatial information. An improved fuzzy C-means clustering algorithm combined with spatial information (SFCM) is proposed in this paper, which is proved to be effective for noisy image segmentation. Firstly, the image is segmented using the SFCM. Secondly, the segmentation result is processed by mathematical morphology to remover the joint region. Thirdly, the road centerlines are extracted by morphology thinning and burr trimming. The average integrity of the centerline extraction algorithm is 97.98%, the average accuracy is 95.36% and the average quality is 93.59%. Experimental results show that the proposed method in this paper is effective for road centerline extraction.
机译:卫星遥感技术具有周期短,规模大,信息量大等优点,近年来已成为最有效的地表监测方法之一。同时,道路提取是高分辨率遥感影像应用中的重要领域。高精度智能自动道路提取算法对交通运输,道路网更新和城市规划具有重要意义。在道路提取中已经使用了模糊c均值(FCM)聚类分割算法,但是传统算法没有考虑空间信息。提出了一种结合空间信息(SFCM)的改进的模糊C均值聚类算法,证明了该算法对噪声图像的分割是有效的。首先,使用SFCM对图像进行分割。其次,通过数学形态学对分割结果进行处理,以去除关节区域。第三,通过形态细化和毛刺修整提取道路中心线。中心线提取算法的平均完整性为97.98%,平均准确度为95.36%,平均质量为93.59%。实验结果表明,本文提出的方法对道路中心线的提取是有效的。

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