DocumentCode :
456949
Title :
Recognizing Rotated Faces from Two Orthogonal Views in Mugshot Databases
Author :
Zhang, Xiaozheng ; Gao, Yongsheng ; Zhang, Bai-ling
Author_Institution :
Sch. of Eng., Griffith Univ.
Volume :
1
fYear :
0
fDate :
0-0 0
Firstpage :
195
Lastpage :
198
Abstract :
Tolerance to pose variations is one of the key remaining problems in face recognition. It is of great interest in airport surveillance systems using mugshot databases to screen travellers´ faces. This paper presents a novel pose-invariant face recognition approach using two orthogonal face images from mugshot databases. Virtual views under different poses are generated in two steps: shape modeling and texture synthesis. In the shape modeling step, a feature-based multilevel quadratic variation minimization approach is applied to generate smooth 3D face shapes. In the texture synthesis step, a non-Lambertian reflectance model is explored to synthesize facial textures taking into account both diffuse and specular reflections. A view-based face recognizer is used to examine the feasibility and effectiveness of the proposed pose-invariant face recognition. The experimental results show that the proposed method provides a new solution to the problem of recognizing rotated faces
Keywords :
face recognition; feature extraction; image texture; stereo image processing; visual databases; 3D face shapes; airport surveillance systems; diffuse reflection; facial texture synthesis; feature-based multilevel quadratic variation minimization; mugshot database; nonLambertian reflectance model; orthogonal face images; pose variation; pose-invariant face recognition; rotated face recognition; shape modeling; specular reflection; Computer vision; Face detection; Face recognition; Humans; Image databases; Reflection; Reflectivity; Shape; Spatial databases; Surveillance;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Pattern Recognition, 2006. ICPR 2006. 18th International Conference on
Conference_Location :
Hong Kong
ISSN :
1051-4651
Print_ISBN :
0-7695-2521-0
Type :
conf
DOI :
10.1109/ICPR.2006.978
Filename :
1698866
Link To Document :
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