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首页> 外文期刊>Geoinformatica: An international journal of advances of computer science for geographic >Automatically and accurately conflating raster maps with orthoimagery
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Automatically and accurately conflating raster maps with orthoimagery

机译:自动准确地将栅格地图与正射影像合并

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摘要

Recent growth of geospatial information online has made it possible to access various maps and orthoimagery. Conflating these maps and imagery can create images that combine the visual appeal of imagery with the attribution information from maps. The existing systems require human intervention to conflate maps with imagery. We present a novel approach that utilizes vector datasets as "glue" to automatically conflate street maps with imagery. First, our approach extracts road intersections from imagery and maps as control points. Then, it aligns the two point sets by computing the matched point pattern. Finally, it aligns maps with imagery based on the matched pattern. The experiments show that our approach can conflate various maps with imagery, such that in our experiments on TIGER-maps covering part of St. Louis county, MO, 85.2% of the conflated map roads are within 10.8 m from the actual roads compared to 51.7% for the original and georeferenced TIGER-map roads.
机译:在线地理空间信息的最新发展使得访问各种地图和正射影像成为可能。将这些地图和图像结合起来可以创建将图像的视觉吸引力与地图的归因信息相结合的图像。现有系统需要人工干预才能将地图与图像融合在一起。我们提出了一种新颖的方法,该方法利用矢量数据集作为“胶水”来自动将街道地图与图像合并。首先,我们的方法从图像和地图中提取道路交叉点作为控制点。然后,通过计算匹配的点图案来对齐两个点集。最后,它根据匹配的模式将地图与图像对齐。实验表明,我们的方法可以将各种地图与图像融合在一起,因此在覆盖密苏里州圣路易斯县一部分的TIGER地图上进行的实验中,融合后的地图道路中有85.2%位于实际道路的10.8 m之内,而51.7%原始和地理参考的TIGER地图道路的%。

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