DocumentCode :
789473
Title :
Orthogonal Laplacianfaces for Face Recognition
Author :
Cai, Deng ; He, Xiaofei ; Han, Jiawei ; Zhang, Hong-Jiang
Author_Institution :
Dept. of Comput. Sci., Illinois Univ.
Volume :
15
Issue :
11
fYear :
2006
Firstpage :
3608
Lastpage :
3614
Abstract :
Following the intuition that the naturally occurring face data may be generated by sampling a probability distribution that has support on or near a submanifold of ambient space, we propose an appearance-based face recognition method, called orthogonal Laplacianface. Our algorithm is based on the locality preserving projection (LPP) algorithm, which aims at finding a linear approximation to the eigenfunctions of the Laplace Beltrami operator on the face manifold. However, LPP is nonorthogonal, and this makes it difficult to reconstruct the data. The orthogonal locality preserving projection (OLPP) method produces orthogonal basis functions and can have more locality preserving power than LPP. Since the locality preserving power is potentially related to the discriminating power, the OLPP is expected to have more discriminating power than LPP. Experimental results on three face databases demonstrate the effectiveness of our proposed algorithm
Keywords :
Laplace equations; approximation theory; eigenvalues and eigenfunctions; face recognition; mathematical operators; statistical distributions; Laplace Beltrami operator; eigenfunctions; face recognition; linear approximation; orthogonal Laplacianfaces; orthogonal locality preserving projection; probability distribution; Approximation algorithms; Eigenvalues and eigenfunctions; Face detection; Face recognition; Geometry; Helium; Image reconstruction; Linear approximation; Linear discriminant analysis; Principal component analysis; Appearance-based vision; face recognition; locality preserving projection (LPP); orthogonal locality preserving projection (OLPP);
fLanguage :
English
Journal_Title :
Image Processing, IEEE Transactions on
Publisher :
ieee
ISSN :
1057-7149
Type :
jour
DOI :
10.1109/TIP.2006.881945
Filename :
1710004
Link To Document :
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