DocumentCode
1446029
Title
New Improvements in Parallel Implementation of N-FINDR Algorithm
Author
Luo, Wenfei ; Zhang, Bing ; Jia, Xiuping
Author_Institution
Sch. of Geogr. Sci., South China Normal Univ., Guangzhou, China
Volume
50
Issue
10
fYear
2012
Firstpage
3648
Lastpage
3659
Abstract
Endmember extraction (EE) is the first step in hyperspectral data unmixing. N-FINDR is one of the most commonly used EE algorithms. Nevertheless, its computational complexity is high, particularly, for a large data set. Following a parallel version of N-FINDR, i.e., P-FINDR, further improvements are presented in this paper. First, generic endmember re-extraction operation (GERO) and multiple search paths are introduced such that multiple endmembers are extracted in parallel. Second, by making full use of the advantages of the proposed algorithms, two extended schemes, i.e., extended mapping rule and multiple-stage GERO are presented, which can reduce synchronous cost and provide steady parallel performance. In experiments, the proposed algorithms have been quantitatively evaluated. The results demonstrate that they can outperform the conventional parallel computing and do not degrade the quality of EE.
Keywords
geophysical techniques; geophysics computing; parallel algorithms; N-FINDR algorithm; P-FINDR; endmember extraction quality; generic endmember reextraction operation; hyperspectral data unmixing analysis; multiple-stage GERO method; parallel algorithm; parallel computing; steady parallel performance analysis; Endmember extraction (EE); N-FINDR; hyperspectral remote sensing; parallel computing;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2012.2185056
Filename
6151124
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