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Exploration of virtual dimensionality in hyperspectral image analysis

机译:高光谱图像分析中虚拟维度的探索

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摘要

Virtual dimensionality (VD) is a new concept which was developed to estimate the number of spectrally distinct signatures present in hyperspectral image data. Unlike intrinsic dimensionality which is mainly of theoretical interest, the VD is a very useful and practical notion. It is derived from the Neyman-Pearson detection theory. Unfortunately, its utility in hyperspectral data exploitation has yet to be explored. This paper presents several applications to which the VD is applied successfully. Since the VD is derived from a binary hypothesis testing problem for each spectral band, it can be used for band selection. When the test fails for a band, it indicates that there is a signal source in that particular band which must be selected. By the same token it can be further used for dimensionality reduction. For principal components analysis (PCA) or independent component analysis (ICA), the VD helps to determine the number of principal components or independent components are required for exploitation such as detection, classification, compression, etc. For unsupervised target detection and classification, the VD can be used to determine how many unwanted signal sources present in the image data so that they can be eliminated prior to detection and classification. For endmember extraction, the VD provides a good estimate of the number of endmembers needed to be extracted. All these applications are justified by experiments.
机译:虚拟维度(VD)是开发的新概念,以估计高光谱图像数据中存在的频谱明显签名的数量。与主要是理论兴趣的内在维度不同,VD是一个非常有用和实用的概念。它是源自奈曼 - 皮尔森检测理论。不幸的是,它在高光谱数据剥削中的实用性尚未探索。本文介绍了成功应用VD的若干应用。由于VD从每个光谱频带的二进制假设检测问题导出,因此它可以用于频带选择。当测试失败的频带时,表示必须选择该特定频段中的信号源。通过相同的标记,它可以进一步用于减少维数。对于主成分分析(PCA)或独立分量分析(ICA),VD有助于确定剥削,分类,压缩等所需的主成分或独立组件的数量,例如无监督的目标检测和分类, VD可用于确定图像数据中存在的许多不需要的信号源,使得在检测和分类之前可以消除它们。对于EndMember提取,VD提供了对所需的终点数量的良好估计。所有这些应用程序都是通过实验合理的。

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