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Algorithm Research on Endmember Extraction Combined With Distribution Statistics

机译:结局提取与分布统计的算法研究

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The spatial resolution of hyperspectral sensor is limited and the surface features are complicated, and each pixel contains more material information, resulting in the existence of a large number of mixed pixels. Therefore, the research on endmember extraction method have been becoming a hotspot in the hyperspectral field. The extraction method which is based on specificity analysis is greatly influenced by abnormal points in the image. This paper mainly combines the pixels' density with distance statistics to analyze different types ofpixels, and then use distribution statistic information to remove the interference of pixels with abnormal properties. On this basis, ATGP, VCA, SGA and NMF are used respectively to conduct the endmember extraction, and then analyze and study the accuracy of the endmember extraction algorithm combining with distribution statistics. Then the validity of this algorithm is verified by simulating hyperspectral images and real hyperspectral images.
机译:高光谱传感器的空间分辨率是有限的,并且表面特征复杂,并且每个像素包含更多的材料信息,导致存在大量的混合像素。因此,对终点的研究的研究已经成为高光谱场中的热点。基于特异性分析的提取方法极大地受到图像异常点的影响。本文主要将像素的密度与距离统计分析分析不同类型的Pixels,然后使用分发统计信息来消除具有异常特性的像素的干扰。在此基础上,分别使用ATGP,VCA,SGA和NMF来进行端环提取,然后分析并研究结合分配统计的终止提取算法的准确性。然后通过模拟高光谱图像和实际高光谱图像来验证该算法的有效性。

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