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Vertex component analysis: A fast algorithm to unmix hyperspectral data
DOI:10.1109/TGRS.2005.844293.png)
摘要
En 中文
Given a set of mixed spectral (multispectral or hyperspectral) vectors, linear spectral mixture analysis, or linear unmixing, aims at estimating the number of reference substances, also called endmembers, their spectral signatures, and their abundance fractions. This paper presents a new method for unsupervised endmember extraction from hyperspectral data, termed vertex component analysis (VCA). The algorithm exploits two facts: 1) the endmembers are the vertices of a simplex and 2) the affine transformation of a simplex is also a simplex. In a series of experiments using simulated and real data, the VCA algorithm competes with state-of-the-art methods, with a computational complexity between one and two orders of magnitude lower than the best available method.
Keyword:
linear unmixing
simplex
spectral mixture model
unmixing hypespectral data
unsupervised endmember extraction
vertex component analysis (VCA)
期刊
IF:
8.6
论文数:
2.1W
被引数:
10.7W
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暂无机构信息
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