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Weighted Modular 2 DPCA-Based Face Recognition from a Single Sample Image Per Class
单样本条件下权重模块2DPCA人脸识别

Keywords: face recognition one sample problem,modular two-dimensional principal component analysis,optical flow
单样本人脸识别
,模块2DPCA,光流场

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Abstract:

In view of face recognition with only on sample problem,we propose a weighted modular 2DPCA method in this paper.In the method,we first divide original images into modular images and accomplish the sub-image 2DPCA feature extraction.Then,we use optical flow between testing and sample image to estimate difference of corresponding pixel blocks quantitatively,which is as criterion for us to give variant weights to each block of difference matrixes between the feature matrixes of sample and that of probing images.Finally,nearest neighbor classifier is employed for classification.The experiment results on the JAFFE and ORL human face database indicate that weighted modular 2DPCA is superior to both conventional 2DPCA and modular 2DPCA in terms of accuracy and robustness with the same dimension of discriminate features,and it is feasible to introduce prior knowledge into PCA method of face recognition.

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