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The appearance of a face is severely altered by illumination conditions that makes automatic face recognition a challenging task. In this paper we propose a Gaussian Mixture Models (GMM)-based human face identification technique built in the Fourier or frequency domain that is robust to illumination changes and does not require “illumination normalization” (removal of illumination effects) prior to application unlike many existing methods. The importance of the Fourier domain phase in human face identification is a well-established fact in signal processing. A maximum a posteriori (or, MAP) estimate based on the posterior likelihood is used to perform identification, achieving misclassification error rates as low as 2% on a database that contains images of 65 individuals under 21 different illumination conditions. Furthermore, a misclassification rate of 3.5% is observed on the Yale database with 10 people and 64 different illumination conditions. Both these sets of results are significantly better than those obtained from traditional PCA and LDA classifiers. Statistical analysis pertaining to model selection is also presented.
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篇名 Gaussian Mixture Models for Human Face Recognition under Illumination Variations
来源期刊 应用数学(英文) 学科 医学
关键词 Classification FACE RECOGNITION MIXTURE MODELS ILLUMINATION
年,卷(期) 2012,(12) 所属期刊栏目
研究方向 页码范围 2071-2079
页数 9页 分类号 R73
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Classification
FACE
RECOGNITION
MIXTURE
MODELS
ILLUMINATION
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应用数学(英文)
月刊
2152-7385
武汉市江夏区汤逊湖北路38号光谷总部空间
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1878
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