DocumentCode :
500959
Title :
Nonlinear feature extraction approaches with application to face recognition over large databases
Author :
Vankayalapati, H.D. ; Kyamakya, Kyandoghere
Author_Institution :
Inst. of Smart Syst. Technol., Univ. of Klagenfurt, Klagenfurt, Austria
fYear :
2009
fDate :
20-21 July 2009
Firstpage :
44
Lastpage :
48
Abstract :
The extraction of required features from the facial image is an important primitive task for face recognition. This paper evaluates different nonlinear feature extraction approaches, namely wavelet transform, radon transform and cellular neural networks (CNN). The scalability of the linear subspace techniques is limited as the computational load and memory requirements increase dramatically with the large database. In this work, the combination of radon and wavelet transform based approach is used to extract the multi-resolution features, which are invariant to facial expression and illumination conditions. The efficiency of the stated wavelet and radon based nonlinear approaches over the databases is demonstrated with the simulation results performed over the FERET database. This paper also presents the use of CNN in extracting the nonlinear facial features in improving the recognition rate as well as computational speed compared to other stated nonlinear approaches over the ORL database.
Keywords :
Radon transforms; cellular neural nets; face recognition; feature extraction; image resolution; very large databases; visual databases; wavelet transforms; FERET database; ORL database; cellular neural networks; computational load; face recognition; facial expression; facial image; illumination conditions; large databases; linear subspace techniques; memory requirements; multiresolution features; nonlinear feature extraction approaches; radon transform; wavelet transform; Cellular neural networks; Computational modeling; Face recognition; Facial features; Feature extraction; Image databases; Lighting; Scalability; Spatial databases; Wavelet transforms; Cellular neural network; Face recognition; Feature extraction; Radon transform; Wavelet transform;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nonlinear Dynamics and Synchronization, 2009. INDS '09. 2nd International Workshop on
Conference_Location :
Klagenfurt
ISSN :
1866-7791
Print_ISBN :
978-1-4244-3844-0
Type :
conf
DOI :
10.1109/INDS.2009.5227967
Filename :
5227967
Link To Document :
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