Please use this identifier to cite or link to this item: http://hdl.handle.net/10553/45014
Title: A low-computational-complexity algorithm for hyperspectral endmember extraction: Modified vertex component analysis
Authors: Lopez, Sebastian 
Horstrand, Pablo
Callico, Gustavo M. 
López, José Fco 
Sarmiento, Roberto 
UNESCO Clasification: 3307 Tecnología electrónica
Keywords: Hyperspectral imaging
Algorithm design and analysis
Signal processing algorithms
Computational complexity
Accuracy
Issue Date: 2012
Publisher: 1545-598X
Journal: IEEE Geoscience and Remote Sensing Letters 
Abstract: Endmember extraction represents one of the most challenging aspects of hyperspectral image processing. In this letter, a new algorithm for endmember extraction, named modified vertex component analysis (MVCA), is presented. This new technique outperforms the popular vertex component analysis (VCA) by applying a low-complexity orthogonalization method and by utilizing integer instead of floating-point arithmetic when dealing with hyperspectral data. The feasibility of this technique is demonstrated by comparing its performance with VCA on synthetic mixtures as well as on the well-known Cuprite hyperspectral image. MVCA shows promising results in terms of much lower computational complexity, still reproducing similar endmember accuracy than its original counterpart. Moreover, the features of this algorithm combined with state-of-the-art hardware implementations qualify MVCA as a good potential candidate for all those applications in which real time is a must.
URI: http://hdl.handle.net/10553/45014
ISSN: 1545-598X
DOI: 10.1109/LGRS.2011.2172771
Source: IEEE Geoscience and Remote Sensing Letters[ISSN 1545-598X],v. 9 (6082371), p. 502-506
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