AN ILLUMINATION INVARIANT TEXTURE BASED FACE RECOGNITION

Automatic face recognition remains an interesting but challenging computer vision open problem. Poor illumination is considered as one of the major issue, since illumination changes cause large variation in the facial features. To resolve this, illumination normalization preprocessing techniques are...

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Published inICTACT journal on image and video processing Vol. 4; no. 2; pp. 709 - 716
Main Authors K, Meena, A, Suruliandi, R, Reena Rose
Format Journal Article
LanguageEnglish
Published ICT Academy of Tamil Nadu 01.11.2013
Subjects
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ISSN0976-9099
0976-9102
DOI10.21917/ijivp.2013.0103

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Abstract Automatic face recognition remains an interesting but challenging computer vision open problem. Poor illumination is considered as one of the major issue, since illumination changes cause large variation in the facial features. To resolve this, illumination normalization preprocessing techniques are employed in this paper to enhance the face recognition rate. The methods such as Histogram Equalization (HE), Gamma Intensity Correction (GIC), Normalization chain and Modified Homomorphic Filtering (MHF) are used for preprocessing. Owing to great success, the texture features are commonly used for face recognition. But these features are severely affected by lighting changes. Hence texture based models Local Binary Pattern (LBP), Local Derivative Pattern (LDP), Local Texture Pattern (LTP) and Local Tetra Patterns (LTrPs) are experimented under different lighting conditions. In this paper, illumination invariant face recognition technique is developed based on the fusion of illumination preprocessing with local texture descriptors. The performance has been evaluated using YALE B and CMU-PIE databases containing more than 1500 images. The results demonstrate that MHF based normalization gives significant improvement in recognition rate for the face images with large illumination conditions.
AbstractList Automatic face recognition remains an interesting but challenging computer vision open problem. Poor illumination is considered as one of the major issue, since illumination changes cause large variation in the facial features. To resolve this, illumination normalization preprocessing techniques are employed in this paper to enhance the face recognition rate. The methods such as Histogram Equalization (HE), Gamma Intensity Correction (GIC), Normalization chain and Modified Homomorphic Filtering (MHF) are used for preprocessing. Owing to great success, the texture features are commonly used for face recognition. But these features are severely affected by lighting changes. Hence texture based models Local Binary Pattern (LBP), Local Derivative Pattern (LDP), Local Texture Pattern (LTP) and Local Tetra Patterns (LTrPs) are experimented under different lighting conditions. In this paper, illumination invariant face recognition technique is developed based on the fusion of illumination preprocessing with local texture descriptors. The performance has been evaluated using YALE B and CMU-PIE databases containing more than 1500 images. The results demonstrate that MHF based normalization gives significant improvement in recognition rate for the face images with large illumination conditions.
Author K, Meena
A, Suruliandi
R, Reena Rose
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CorporateAuthor St. Xavier’s Catholic College of Engineering, India
Manonmaniam Sundaranar University, India
J. P. College of Engineering, India
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Snippet Automatic face recognition remains an interesting but challenging computer vision open problem. Poor illumination is considered as one of the major issue,...
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StartPage 709
SubjectTerms Face Recognition
Texture Analysis
Texture Features
Title AN ILLUMINATION INVARIANT TEXTURE BASED FACE RECOGNITION
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