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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >Semi-automatic verification of cropland and grassland using very high resolution mono-temporal satellite images
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Semi-automatic verification of cropland and grassland using very high resolution mono-temporal satellite images

机译:使用超高分辨率单时间卫星图像对农田和草地进行半自动验证

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摘要

Many public and private decisions rely on geospatial information stored in a GIS database. For good decision making this information has to be complete, consistent, accurate and up-to-date. In this paper we introduce a new approach for the semi-automatic verification of a specific part of the, possibly outdated GIS database, namely cropland and grassland objects, using mono-temporal very high resolution (VHR) multispectral satellite images. The approach consists of two steps: first, a supervised pixel-based classification based on a Markov Random Field is employed to extract image regions which contain agricultural areas (without distinction between cropland and grassland), and these regions are intersected with boundaries of the agricultural objects from the GIS database. Subsequently, GIS objects labelled as cropland or grassland in the database and showing agricultural areas in the image are subdivided into different homogeneous regions by means of image segmentation, followed by a classification of these segments into either cropland or grassland using a Support Vector Machine. The classification result of all segments belonging to one GIS object are finally merged and compared with the GIS database label. The developed approach was tested on a number of images. The evaluation shows that errors in the GIS database can be significantly reduced while also speeding up the whole verification task when compared to a manual process.
机译:许多公共和私人决策都依赖于GIS数据库中存储的地理空间信息。为了做出良好的决策,此信息必须是完整,一致,准确和最新的。在本文中,我们介绍了一种使用单时间超高分辨率(VHR)多光谱卫星图像对可能已过时的GIS数据库的特定部分(即农田和草地物体)进行半自动验证的新方法。该方法包括两个步骤:首先,基于马尔可夫随机场的基于像素的有监督分类被用于提取包含农业区域(不区分耕地和草地)的图像区域,并且这些区域与农业区域的边界相交。 GIS数据库中的对象。随后,通过图像分割将在数据库中标记为农田或草地并在图像中显示农业区域的GIS对象细分为不同的同质区域,然后使用支持向量机将这些分段分为农田或草地。最终将属于一个GIS对象的所有段的分类结果合并,并与GIS数据库标签进行比较。在多种图像上测试了开发的方法。评估显示,与手动过程相比,可以显着减少GIS数据库中的错误,同时还可以加快整个验证任务的速度。

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