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Change detection in land-cover pattern using region growing segmentation and fuzzy classification

机译:使用区域生长分割和模糊分类改变陆地覆盖模式中的检测

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This study has utilized a spatial region growing segmentation and a classification using fuzzy membership vectors to detect the changes in the images observed at different dates. Consider two coregistered images of the same scene, and one image is supposed to have the class map of the scene at the observation time. The method performs the unsupervised segmentation and the fuzzy classification for the other image, and then detects the changes in the scene by examining the changes in the fuzzy membership vectors of the segmented regions in the classification procedure. The algorithm has evaluated with simulated synthetic images.
机译:该研究利用空间区域生长分割和使用模糊隶属载体的分类来检测在不同日期观察到的图像的变化。考虑同一场景的两个共注入的图像,并且一个图像应该在观察时间处具有场景的类映射。该方法对其他图像执行无监督的分割和模糊分类,然后通过检查分类过程中分段区域的模糊成员资格向量的变化来检测场景的变化。该算法评估了模拟的合成图像。

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