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Semi-supervised hyperspectral pixel classification using interactive labeling

机译:使用互动标签半监督高光谱像素分类

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A semi-supervised pixel classification scheme for hyperspectral satellite images is presented. The scheme includes a previous band selection step followed by a clustering process to select modes of interest that will be labeled by an expert. Then pixel classification is performed resulting in a segmentation and classification of the fields appearing in the image. Thanks to the previous clustering step the most suitable pixels are automatically selected to build the classifier. This reduces the expert effort required since less pixels need to be labeled. However pixel classification accuracy obtained outperforms the results of a random selection scheme where many more pixels were labeled.
机译:提出了一种用于高光谱卫星图像的半监督像素分类方案。该方案包括先前的频带选择步骤,然后是聚类过程,以选择由专家标记的感兴趣模式。然后执行像素分类,从而产生图像中出现在图像中的字段的分割和分类。由于先前的群集步骤,自动选择最合适的像素以构建分类器。这减少了所需的专家努力,因为需要较少的像素需要标记。然而,像素分类精度获得的是随机选择方案的结果,其中标记了更多像素。

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