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Main Road Extraction from ZY-3 Grayscale Imagery Based on Directional Mathematical Morphology and VGI Prior Knowledge in Urban Areas

机译:基于方向数学形态学和VGI先验知识的ZY-3灰度图像主干道提取

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摘要

Main road features extracted from remotely sensed imagery play an important role in many civilian and military applications, such as updating Geographic Information System (GIS) databases, urban structure analysis, spatial data matching and road navigation. Current methods for road feature extraction from high-resolution imagery are typically based on threshold value segmentation. It is difficult however, to completely separate road features from the background. We present a new method for extracting main roads from high-resolution grayscale imagery based on directional mathematical morphology and prior knowledge obtained from the Volunteered Geographic Information found in the OpenStreetMap. The two salient steps in this strategy are: (1) using directional mathematical morphology to enhance the contrast between roads and non-roads; (2) using OpenStreetMap roads as prior knowledge to segment the remotely sensed imagery. Experiments were conducted on two ZiYuan-3 images and one QuickBird high-resolution grayscale image to compare our proposed method to other commonly used techniques for road feature extraction. The results demonstrated the validity and better performance of the proposed method for urban main road feature extraction.
机译:从遥感影像中提取的主要道路特征在许多民用和军事应用中都起着重要作用,例如更新地理信息系统(GIS)数据库,城市结构分析,空间数据匹配和道路导航。从高分辨率图像中提取道路特征的当前方法通常基于阈值分割。但是,很难将道路特征与背景完全分开。我们提出了一种新的方法,该方法基于定向数学形态学和从OpenStreetMap中发现的“自愿地理信息”获得的先验知识,从高分辨率灰度图像中提取主要道路。该策略的两个重要步骤是:(1)使用定向数学形态学来增强道路与非道路之间的对比度; (2)使用OpenStreetMap道路作为先验知识来分割遥感影像。在两幅ZiYuan-3图像和一张QuickBird高分辨率灰度图像上进行了实验,以将我们提出的方法与其他常用的道路特征提取技术进行比较。结果证明了该方法在城市主要道路特征提取中的有效性和较好的性能。

著录项

  • 期刊名称 other
  • 作者单位
  • 年(卷),期 -1(10),9
  • 年度 -1
  • 页码 e0138071
  • 总页数 16
  • 原文格式 PDF
  • 正文语种
  • 中图分类
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  • 入库时间 2022-08-21 11:14:28

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