DocumentCode :
2072221
Title :
Robust face recognition by fusion local singular value feature and deformable model
Author :
Liao Haibin ; Chen Qinghu ; Wang Hongyong ; Zhao Qianqian
Author_Institution :
Sch. of Electron. Inf., Wuhan Univ., Wuhan, China
fYear :
2010
fDate :
29-31 July 2010
Firstpage :
2694
Lastpage :
2699
Abstract :
Presently, face recognition has two main barriers, which are the variation of illumination, expression, pose and the occlusion and disguise respectively. The problem of robust identification human faces with varying expression and illumination, as well as occlusion and disguise will be researched in this paper. Firstly, singular value decomposition will be used for the face image, casting the singular value vector of test face image as a linear combination of the singular value vectors of face database and used deformable model representation; then, match optimization deformable model for solving combinatorial coefficient; finally, according to the sparse nature of coefficients for classification, and use slice-weighted strategy to further improve the robustness. Experimental results on Extended Yale B Database and AR Database shows that this method is very effective for face recognition and can significantly improve the robustness and stability of disguise and occlusion.
Keywords :
deformation; face recognition; feature extraction; image classification; image fusion; image matching; image representation; singular value decomposition; visual databases; AR database; deformable model representation; extended Yale B database; face database; human face robust identification; illumination variation; local singular value feature fusion; optimization deformable model matching; robust face recognition; singular value decomposition; singular value vector casting; slice-weighted strategy; test face image; Classification algorithms; Deformable models; Face; Face recognition; Humans; Robustness; Training; Deformable Model; Face Recognition; Singular Value Decomposition; Sparse Representation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2010 29th Chinese
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-6263-6
Type :
conf
Filename :
5572087
Link To Document :
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