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Geometric matched filter for hyperspectral partial unmixing

机译:高光谱部分解密的几何匹配滤波器

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摘要

In this paper, a new geometric matched filter is presented by combining the standard matched filtering with concepts of convex geometry. The purpose of the method is partial unmixing of a hyperspectral image, where an estimate is given for the relative contribution of each pixel to a specific target spectrum. In standard matched filtering, the filter is designed based on the background statistics of the entire image, which works fine when the target is contained in a limited number of pixels, but fails when the target is abundantly present throughout the whole image. The presented method calculates the filter based on the statistics of pixels that do not contain the target spectrum. These background pixels are identified based on the simplex formed by the target and other relevant endmembers of the dataset. In the experiments, the presented method is shown to outperform standard matched filtering for partial unmixing.
机译:在本文中,通过将标准匹配的滤波与凸几何概念组合来呈现新的几何匹配滤波器。该方法的目的是Hyperspectral图像的部分解混,其中给出了每个像素对特定目标频谱的相对贡献的估计。在标准匹配过滤中,基于整个图像的背景统计设计,当目标包含在有限数量的像素中时,该滤波器基于整个图像的背景统计设计,但是当目标在整个图像中大量存在时失败时失败。该方法基于不包含目标频谱的像素的统计来计算滤波器。基于由目标和数据集的其他相关终端用的单独x来识别这些背景像素。在实验中,显示出呈现的方法以优于部分解密的标准匹配过滤。

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