DocumentCode :
2898428
Title :
Pose normalization for robust face recognition based on statistical affine transformation
Author :
Chai, Xiujuan ; Shan, Shiguang ; Gao, Wen
Author_Institution :
Comput. Coll., Harbin Inst. of Technol., China
Volume :
3
fYear :
2003
fDate :
15-18 Dec. 2003
Firstpage :
1413
Abstract :
A framework for pose-invariant face recognition using the pose alignment method is described in this paper. The main idea is to normalize the face view in depth to frontal view as the input of face recognition framework. Concretely, an inputted face image is first normalized using the irises information, and then the pose subspace algorithm is employed to perform the pose estimation. To model the pose-invariance, the face region is divided into three rectangles with different mapping parameters in this pose alignment algorithm. So the affine transformation parameters associated with the different poses can be used to align the input pose image to frontal view. To evaluate this algorithm objectively, the views after the pose alignment are incorporated into the frontal face recognition system. Experimental results show that it has the better performance and it increases the recognition rate statistically by 17.75% under the pose that rotated within 30 degree.
Keywords :
face recognition; parameter estimation; statistics; affine transformation parameter; frontal face recognition system; pose estimation; pose normalization; pose subspace algorithm; statistical affine transformation; Biometrics; Cameras; Computers; Content addressable storage; Educational institutions; Face recognition; Image recognition; Optical computing; Robustness; Waveguide discontinuities;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Information, Communications and Signal Processing, 2003 and Fourth Pacific Rim Conference on Multimedia. Proceedings of the 2003 Joint Conference of the Fourth International Conference on
Print_ISBN :
0-7803-8185-8
Type :
conf
DOI :
10.1109/ICICS.2003.1292698
Filename :
1292698
Link To Document :
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