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A New System to Perform Unsupervised and Supervised Classification of Satellite Images from Google Maps

机译:从谷歌地图执行无监督和监督卫星图像的无监督和监督分类的新系统

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In this paper, we describe a new system for unsupervised and supervised classification of satellite images from Google Maps. The system has been developed using the SwingX-WS library, and incorporates functionalities such as unsupervised classification of image portions selected by the user (at the maximum zoom level) using ISODATA and k-Means, and supervised classification using the Minimum Distance and Maximum Likelihood, followed by spatial post-processing based on majority voting. Selected regions in the classified portion are used to train a maximum likelihood classifier able to map larger image areas in a manner transparent to the user. The system also retrieves areas containing regions similar to those already classified. An experimental validation of the proposed system has been conducted by comparing the obtained classification results with those provided by commercial software, such as the popular Research Systems ENVI package.
机译:在本文中,我们描述了谷歌地图的无监督和监督卫星图像的新系统。该系统已经使用SwingX-WS库开发,并结合了使用ISODATA和K均值所选择的用户(在最大变焦级别)选择的图像部分的功能等功能,以及使用最小距离和最大可能性进行监督分类,其次是基于大多数投票的空间后处理。分类部分中的所选区域用于训练能够以对用户透明的方式映射较大图像区域的最大似然分类器。该系统还检索包含与已经分类的区域类似的区域。通过将获得的分类结果与商业软件提供的那些进行比较,例如流行的研究系统Envi包,已经进行了所提出的系统的实验验证。

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