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Change Detection for Hyperspectral Images Using Extended Mutual Information and Oversegmentation

机译:使用延长的相互信息和过度重新执行来改变高光谱图像的检测

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摘要

We propose a change detection algorithm for hyperspectral images by properly extending the description of commonly used mutual information metric in monochrome images to hyperspectral images. The newly extended metric for the additional spectral dimension in hyperspectral images accumulates the effects of all spectral bands to the statistical relation between the pixels of the two images at the same location. In order to avoid blurring kind of distortions in the change maps resulting from the usage of fixed size kernels during the calculation of mutual information in previous literature, the proposed method first applies an oversegmentation to the hyperspectral images and then, computes the extended metric over the produced superpixels. The proposed approach based on joint superpixels and extended mutual information is compared with two basic approaches, whereas the first one uses conventional mutual information of two images and the second method utilizes the extended mutual information over rectangular kernels. The experimental results indicate that the change masks obtained by the proposed method are more accurate compared to the baseline approaches.
机译:我们通过适当地将单色图像中的常用互信息度量的描述适当地扩展到高光谱图像来提出用于高光谱图像的变化检测算法。高光谱图像中的附加光谱维度的新扩展度量累积了所有光谱带对同一位置处的两个图像的像素之间的统计关系的效果。为了避免在先前文献中的相互信息期间使用固定尺寸内核的变化图中的变化映射中的模糊类型,所提出的方法首先应用于超光谱图像,然后计算扩展度量生产的超像素。基于联合超像素和扩展相互信息的提出方法与两个基本方法进行了比较,而第一个使用两个图像的传统相互信息,第二种方法利用矩形内核的扩展互信息。实验结果表明,与基线方法相比,所提出的方法获得的变化面罩更准确。

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