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Component Analysis-Based Unsupervised Linear Spectral Mixture Analysis for Hyperspectral Imagery

机译:基于成分分析的高光谱图像无监督线性光谱混合分析

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Two of the most challenging issues in the unsupervised linear spectral mixture analysis (ULSMA) are: 1) determining the number of signatures to form a linear mixing model; and 2) finding the signatures used to unmix data. These two issues do not occur in supervised LSMA since the target signatures are assumed to be known a priori. With recent advances in hyperspectral sensor technology, many unknown and subtle signal sources can now be uncovered and revealed and such signal sources generally cannot be identified by prior knowledge. Even when they can, the obtained knowledge may not be reliable, accurate, or complete. As a consequence, the resulting unmixed results may be misleading. This paper addresses these issues by introducing a new concept of inter-band spectral information (IBSI), which can be used to categorize signatures into background and target classes in terms of their sample spectral statistics. It then develops a component analysis (CA)-based ULSMA where two classes of signatures can be extracted directly from the data by two different CA-based transforms without requiring prior knowledge. In order to substantiate the utility of the proposed approach, synthetic images are used for experiments and real images are further used for validation.
机译:无监督线性频谱混合分析(ULSMA)中两个最具挑战性的问题是:1)确定签名的数量以形成线性混合模型; 2)找到用于解混数据的签名。由于假定目标签名是先验的,所以在受监督的LSMA中不会发生这两个问题。随着高光谱传感器技术的最新发展,现在可以发现和揭示许多未知和微妙的信号源,并且这些信号源通常无法通过先验知识来识别。即使可能,获得的知识可能也不可靠,准确或完整。结果,所得的混合结果可能会产生误导。本文通过介绍带间频谱信息(IBSI)的新概念解决了这些问题,该概念可用于根据签名样本频谱统计将签名分类为背景和目标类别。然后,它开发了一种基于组件分析(CA)的ULSMA,其中可以通过两次不同的基于CA的转换直接从数据中提取两类签名,而无需先验知识。为了证实所提出方法的实用性,将合成图像用于实验,并将真实图像进一步用于验证。

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