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  4. Classification-Specific Feature Sampling for Face Recognition
 
conference paper

Classification-Specific Feature Sampling for Face Recognition

Kokiopoulou, E.  
•
Frossard, P.  
2006
2006 IEEE Workshop on Multimedia Signal Processing

Feature extraction based on different types of signal filters has received a lot of attention in the context of face recognition. It generally results into extremely high dimensional feature vectors, and sampling of the coefficients is required to reduce their dimensionality. Unfortunately, uniform sampling that is commonly used to that aim, does not consider the specificities of the recognition task in selecting the most relevant features. In this paper, we propose to formulate the sampling problem as a supervised feature selection problem where features are carefully selected according to a well defined discrimination criterion. The sampling process becomes specific to the classification task, and further facilitates the face recognition operations. We propose to build features on random filters, and Gabor wavelets, since they present interesting characteristics in terms of discrimination, due to their high frequency components. Experimental results show that the proposed feature selection method outperforms uniform sampling, and that random filters are very competitive with the common Gabor wavelet filters for face recognition tasks.

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Type
conference paper
DOI
10.1109/MMSP.2006.285260
Web of Science ID

WOS:000244125600005

Author(s)
Kokiopoulou, E.  
Frossard, P.  
Date Issued

2006

Published in
2006 IEEE Workshop on Multimedia Signal Processing
Start page

20

End page

23

Subjects

LTS4

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LTS4  
Available on Infoscience
October 27, 2006
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/235339
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