DocumentCode :
1589647
Title :
Face Recognition Based on Curvefaces
Author :
Zhang, Jiulong ; Zhang, Zhiyu ; Huang, Wei ; Lu, Yanjun ; Wang, Yinghui
Author_Institution :
Xi ´´an Univ. ofTechnology, Xian
Volume :
2
fYear :
2007
Firstpage :
627
Lastpage :
631
Abstract :
A new method called curvefaces was firstly presented for face recognition, which is based on curvelet transform. Curvelet is the latest multiscale geometric analysis tool. Contrast to wavelet transform, curvelet transform directly takes edges as the basic representation elements and is anisotropic with strong direction. It is a multiresolution, band pass and directional function analysis method which is useful to represent the image edges and the curved singularities in images more efficiently. It yields a more sparse representation of the image than wavelet and ridgelet transform. In face recognition, the curvelet coefficients can better represent the main features of the faces. The support vector machine (SVM) can then be used to classify the images. SVM is based on the statistical learning theory and is especially valid for small sample set and can get high recognition rate. Multi-class SVM is employed in this paper. The simulation shows that the proposed method is better than wavelet based method.
Keywords :
face recognition; image classification; support vector machines; wavelet transforms; curvefaces; curvelet transform; directional function analysis method; face recognition; image edges; multiscale geometric analysis tool; statistical learning theory; support vector machine; Anisotropic magnetoresistance; Automation; Computer science; Face recognition; Frequency; Image analysis; Image resolution; Support vector machine classification; Support vector machines; Wavelet transforms; Curvelet Transform; Face; Recognition; SVM; Wavelet Transform;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Natural Computation, 2007. ICNC 2007. Third International Conference on
Conference_Location :
Haikou
Print_ISBN :
978-0-7695-2875-5
Type :
conf
DOI :
10.1109/ICNC.2007.370
Filename :
4344426
Link To Document :
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