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Clustering analysis as a basic tool for hyperspectral remote sensing image

机译:聚类分析作为高光谱遥感影像的基本工具

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Clustering analysis groups data objects based on information only found in the data that describes the objects and the relationships. As it is a spatial method, more research are focused on remote sensing application recently. This paper presents comparison of two classic cluster algorithms used in hyperspectral remote sensing image classification and the results showed that the classification of maximum likelihood algorithm is better than ISODATA algorithm.
机译:聚类分析仅根据描述对象及其关系的数据中的信息对数据对象进行分组。由于它是一种空间方法,因此近来更多的研究集中在遥感应用上。本文对两种用于高光谱遥感图像分类的经典聚类算法进行了比较,结果表明,最大似然算法的分类优于ISODATA算法。

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