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Automatic cloud detection based on neutrosophic set in satellite images

机译:基于中智集的卫星图像自动云探测

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In this paper, an approach for automatic cloud detection and localization in satellite remote sensing images is introduced. Cloud detection is useful in improving the accuracy of land cover classification in cloudy satellite images. The accurate detection of clouds in satellite images is vital for many atmospheric and terrestrial applications. In this paper we propose an algorithm for automatic cloud detection based on neutrosophic set and wavelet transform. The proposed approach uses both color and texture features for cloud detection. The input image is transformed into Lab color model for extracting the color features and gray scale image for extracting the texture features. Transformed images are converted into neutrosophic domain. An indeterminacy reduction operation is performed for getting better results. Finally a Fuzzy C-means clustering is performed on the true subsets. This gives the cloud detected image. This method is efficient in detecting thick clouds and thin clouds in Landsat images. Result analysis shows that the proposed algorithm can effectively detect the thin cloud. The proposed algorithm gives accurate results in less time complexity.
机译:本文介绍了一种在卫星遥感图像中自动进行云检测和定位的方法。云检测有助于提高多云卫星图像中土地覆盖分类的准确性。准确检测卫星图像中的云对于许多大气和地面应用至关重要。本文提出了一种基于中智集和小波变换的云自动检测算法。所提出的方法将颜色和纹理特征都用于云检测。输入图像被转换为​​用于提取颜色特征的Lab颜色模型,以及用于提取纹理特征的灰度图像。转换后的图像将转换为中智区域。执行不确定性减少操作以获得更好的结果。最后,对真实子集执行模糊C均值聚类。这给出了云检测图像。该方法可有效检测Landsat图像中的厚云和薄云。结果分析表明,该算法可以有效地检测出薄云。所提出的算法以较少的时间复杂度给出了准确的结果。

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