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Erschienen in: Cluster Computing 1/2018

09.03.2017

Face recognition technology development with Gabor, PCA and SVM methodology under illumination normalization condition

verfasst von: Meijing Li, Xiuming Yu, Keun Ho Ryu, Sanghyuk Lee, Nipon Theera-Umpon

Erschienen in: Cluster Computing | Ausgabe 1/2018

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Abstract

Face recognition is a challenging research field in computer sciences, numerous studies have been proposed by many researchers. However, there have been no effective solutions reported for full illumination variation of face images in the facial recognition research field. In this paper, we propose a methodology to solve the problem of full illumination variation by the combination of histogram equalization (HE) and Gaussian low-pass filter (GLPF). In order to process illumination normalization, feature extraction is applied with consideration of both Gabor wavelet and principal component analysis methods. Next, a Support Vector Machine classifier is used for face classification. In the experiments, illustration performance was compared with our proposed approach and the conventional approaches with three different kinds of face databases. Experimental results show that our proposed illumination normalization approach (HE_GLPF) performs better than the conventional illumination normalization approaches, in face images with the full illumination variation problem.

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Metadaten
Titel
Face recognition technology development with Gabor, PCA and SVM methodology under illumination normalization condition
verfasst von
Meijing Li
Xiuming Yu
Keun Ho Ryu
Sanghyuk Lee
Nipon Theera-Umpon
Publikationsdatum
09.03.2017
Verlag
Springer US
Erschienen in
Cluster Computing / Ausgabe 1/2018
Print ISSN: 1386-7857
Elektronische ISSN: 1573-7543
DOI
https://doi.org/10.1007/s10586-017-0806-7

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