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Classification of Remote Sensing Images from Urban Areas Using a Fuzzy Model

机译:使用模糊模型对城市地区遥感图像的分类

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The problem of classification of high-resolution remotely sensed images from urban areas is addressed. Previous studies have shown the interest of exploiting the local geometrical information of each pixel to improve the classification. This is performed using the derivative morphological profile (DMP) obtained with a granulometric approach, using respectively opening and closing operators. For each pixel, this DMP constitutes the feature vector on which the classification is based. In this paper, this vector is considered as a fuzzy measurement of the size of the structure. Compared with some possibility distributions, a membership degree is computed for each class. The decision is taken by selecting the class with the highest membership degree.
机译:解决了来自城市地区的高分辨率传感图像的分类问题。 以前的研究表明利用利用每个像素的本地几何信息来改善分类。 这是使用用粒度方法获得的衍生形态曲线(DMP)进行,分别使用分别打开和关闭操作员。 对于每个像素,该DMP构成了分类所基于的特征向量。 在本文中,该载体被认为是结构尺寸的模糊测量。 与某些可能性分布相比,为每个类计算隶属度。 通过选择具有最高员额学位的课程来完成该决定。

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