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首页> 外文期刊>Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of >Spatial-Spectral Information Based Abundance-Constrained Endmember Extraction Methods
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Spatial-Spectral Information Based Abundance-Constrained Endmember Extraction Methods

机译:基于空间光谱信息的丰度受限末端成员提取方法

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摘要

Endmember extraction, which is an important technique for hyperspectral data interpretation, selects a collection of pure signature spectra of the different materials, called endmembers, which are present in a remotely sensed hyperspectral image scene. These pure signatures are then used in spectral unmixing algorithms to decompose the scene into abundance fractions, which indicate the proportion of each endmember's presence in a mixed pixel. In other words, abundances can be obtained by the given endmembers. Correspondingly, endmembers can be extracted based on an abundance constraint. In this paper, we first propose an endmember extraction framework based on an abundance constraint whose efficiency is related to the abundance calculation. The mainstream existing spatial-spectral algorithms can have a very high complexity and are sensitive to outliers, or the spatial information is considered followed by the spectral information. We therefore propose a strategy to consider the spectral information followed by the spatial information, using an abundance-constrained framework. The spatial strategy is also assumed to be immune to outliers. Experiments on both synthetic and real hyperspectral data sets indicate that: 1) the abundance constraint is effective for endmember extraction; and 2) the proposed spatial processing method used in the abundance-constrained endmember extraction framework can effectively avoid outliers.
机译:端元提取是高光谱数据解释的一项重要技术,它选择了不同材料的纯特征谱的集合,称为端元,这些物质存在于遥感的高光谱图像场景中。然后,将这些纯签名用于光谱解混算法中,以将场景分解为丰度分数,该分数指示每个末端成员在混合像素中的存在比例。换句话说,给定的末端成员可以获得丰度。相应地,可以基于丰度约束提取端成员。在本文中,我们首先提出了一个基于丰度约束的端成员提取框架,其效率与丰度计算有关。现有的主流空间光谱算法可能具有很高的复杂度,并且对异常值敏感,或者认为空间信息后面是光谱信息。因此,我们提出了一种使用丰度约束框架来考虑光谱信息和空间信息的策略。还假定空间策略不受异常值的影响。在合成和真实高光谱数据集上的实验表明:1)丰度约束对于末端成员提取是有效的; 2)提出的在丰度受限的端元提取框架中使用的空间处理方法可以有效避免异常值。

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