DocumentCode
3015143
Title
Face Re-Lighting from a Single Image under Harsh Lighting Conditions
Author
Wang, Yang ; Liu, Zicheng ; Hua, Gang ; Wen, Zhen ; Zhang, Zhengyou ; Samaras, Dimitris
Author_Institution
Carnegie Mellon Univ., Pittsburgh
fYear
2007
fDate
17-22 June 2007
Firstpage
1
Lastpage
8
Abstract
In this paper, we present a new method to change the illumination condition of a face image, with unknown face geometry and albedo information. This problem is particularly difficult when there is only one single image of the subject available and it was taken under a harsh lighting condition. Recent research demonstrates that the set of images of a convex Lambertian object obtained under a wide variety of lighting conditions can be approximated accurately by a low-dimensional linear subspace using spherical harmonic representation. However, the approximation error can be large under harsh lighting conditions thus making it difficult to recover albedo information. In order to address this problem, we propose a subregion based framework that uses a Markov Random Field to model the statistical distribution and spatial coherence of face texture, which makes our approach not only robust to harsh lighting conditions, but insensitive to partial occlusions as well. The performance of our framework is demonstrated through various experimental results, including the improvement to the face recognition rate under harsh lighting conditions.
Keywords
Markov processes; face recognition; image texture; statistical distributions; Markov random field; convex Lambertian object; face recognition; face relighting; face texture; harsh lighting conditions; spatial coherence; spherical harmonic representation; statistical distribution; Application software; Approximation error; Computational geometry; Face detection; Face recognition; Humans; Lighting; Markov random fields; Robustness; Solid modeling;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer Vision and Pattern Recognition, 2007. CVPR '07. IEEE Conference on
Conference_Location
Minneapolis, MN
ISSN
1063-6919
Print_ISBN
1-4244-1179-3
Electronic_ISBN
1063-6919
Type
conf
DOI
10.1109/CVPR.2007.383106
Filename
4270131
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