DocumentCode
2552128
Title
On the initialization of the DNMF algorithm
Author
Buciu, Joan ; Nikolaidis, Nikos ; Pitas, Loannis
Author_Institution
Dept. of Informatics, Aristotle Univ. of Thessaloniki
fYear
2006
fDate
21-24 May 2006
Abstract
A subspace supervised learning algorithm named discriminant non-negative matrix factorization (DNMF) has been recently proposed for classifying human facial expressions. It decomposes images into a set of basis images and corresponding coefficients. Usually, the algorithm starts with random basis image and coefficient initialization. Then, at each iteration, both basis images and coefficients are updated to minimize the underlying cost function. The algorithm may need several thousands of iterations to obtain cost function minimization. We provide a way to significantly improve the speed of the algorithm convergence by constructing initial basis images that meet the sparseness and orthogonality requirements and approximate the final minimization solution. To experimentally evaluate the new approach, we have applied DNMF using the random and the proposed initialization procedure to recognize six basic facial expressions. While fewer iteration steps are needed with the proposed initialization, the recognition accuracy remains within satisfactory levels
Keywords
emotion recognition; face recognition; image classification; learning (artificial intelligence); matrix decomposition; minimisation; cost function minimization; discriminant nonnegative matrix factorization; human facial expression classification; image decomposition; supervised learning algorithm; Cost function; Humans; Image databases; Informatics; Least squares approximation; Matrix decomposition; Minimization methods; Pixel; Scattering; Supervised learning;
fLanguage
English
Publisher
ieee
Conference_Titel
Circuits and Systems, 2006. ISCAS 2006. Proceedings. 2006 IEEE International Symposium on
Conference_Location
Island of Kos
Print_ISBN
0-7803-9389-9
Type
conf
DOI
10.1109/ISCAS.2006.1693672
Filename
1693672
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