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Texture analysis through a Markovian modelling and fuzzy classification: Application to urban area extraction from satellite images

机译:通过马尔可夫模型和模糊分类进行纹理分析:在卫星图像市区提取中的应用

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Herein we propose a complete procedure to analyze and classify the texture of an image. We apply this scheme to solve a specific image processing problem: urban areas detection in satellite images. First we propose to analyze the texture through the modelling of the luminance field with eight different chain-based models. We then derived a texture parameter from these models. The effect of the lattice anisotropy is corrected by a renormalization group technique coming from statistical physics. This parameter, which takes into account local conditional variances of the image, is compared to classical methods of texture analysis. Afterwards we develop a modified fuzzy Cmeans algorithm that includes an entropy term. The advantage of such an algorithm is that the number of classes does not need to be known a priori. Besides this algorithm provides us with further information, i.e. the probability that a given pixel belongs to a given cluster. Finally we introduce this information in a Markovian model of segmentation. Some results on SPOT5 simulated images, SPOT3 images and ERS1 radar images are presented. These images are provided by the French National Space Agency (CNES) and the European Space Agency (ESA). [References: 49]
机译:在这里,我们提出了一个完整的过程来分析和分类图像的纹理。我们应用此方案来解决特定的图像处理问题:卫星图像中的市区检测。首先,我们建议通过使用八个不同的基于链的模型对亮度场进行建模来分析纹理。然后,我们从这些模型中导出纹理参数。晶格各向异性的影响通过统计物理学的归一化分组技术进行校正。考虑到图像的局部条件方差,将该参数与经典的纹理分析方法进行比较。之后,我们开发了一种改进的模糊Cmeans算法,其中包括一个熵项。这种算法的优点是不需要事先知道类别的数量。除此之外,该算法还为我们提供了更多信息,即给定像素属于给定簇的概率。最后,我们在马尔可夫分割模型中介绍了此信息。给出了一些关于SPOT5模拟图像,SPOT3图像和ERS1雷达图像的结果。这些图像由法国国家航天局(CNES)和欧洲航天局(ESA)提供。 [参考:49]

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