DocumentCode :
2267357
Title :
Optimal feature selection for subspace image matching
Author :
Roig, Gemma ; Boix, Xavier ; De La Torre, Fernando
Author_Institution :
GTM-Grup de Recerca de Tecnologies Media, Univ. Ramon Llull, Barcelona, Spain
fYear :
2009
fDate :
Sept. 27 2009-Oct. 4 2009
Firstpage :
200
Lastpage :
205
Abstract :
Image matching has been a central research topic in computer vision over the last decades. Typical approaches to correspondence involve matching features between images. In this paper, we present a novel problem for establishing correspondences between a sparse set of image features and a previously learned subspace model. We formulate the matching task as an energy minimization, and jointly optimize over all possible feature assignments and parameters of the subspace model. This problem is in general NP-hard. We propose a convex relaxation approximation, and develop two optimization strategies: naive gradient-descent and quadratic programming. Alternatively, we reformulate the optimization criterion as a sparse eigenvalue problem, and solve it using a recently proposed backward greedy algorithm. Experimental results on facial feature detection show that the quadratic programming solution provides better selection mechanism for relevant features.
Keywords :
computer vision; eigenvalues and eigenfunctions; feature extraction; gradient methods; image matching; quadratic programming; NP hard; computer vision; convex relaxation approximation; energy minimization; naive gradient descent; optimal feature selection; optimization criterion; quadratic programming; sparse eigenvalue problem; subspace image matching; Computer vision; Conferences; Face detection; Facial features; Image matching; Linear programming; Mouth; Quadratic programming; Robot vision systems; Shape;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision Workshops (ICCV Workshops), 2009 IEEE 12th International Conference on
Conference_Location :
Kyoto
Print_ISBN :
978-1-4244-4442-7
Electronic_ISBN :
978-1-4244-4441-0
Type :
conf
DOI :
10.1109/ICCVW.2009.5457698
Filename :
5457698
Link To Document :
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