DocumentCode :
3005265
Title :
Image deblurring for less intrusive iris capture
Author :
Xinyu Huang ; Liu Ren ; Ruigang Yang
Author_Institution :
Res. & Technol. Center, Robert Bosch, Palo Alto, CA, USA
fYear :
2009
fDate :
20-25 June 2009
Firstpage :
1558
Lastpage :
1565
Abstract :
For most iris capturing scenarios, captured iris images could easily blur when the user is out of the depth of field (DOF) of the camera, or when he or she is moving. The common solution is to let the user try the capturing process again as the quality of these blurred iris images is not good enough for recognition. In this paper, we propose a novel iris deblurring algorithm that can be used to improve the robustness and nonintrusiveness for iris capture. Unlike other iris deblurring algorithms, the key feature of our algorithm is that we use the domain knowledge inherent in iris images and iris capture settings to improve the performance, which could be in the form of iris image statistics, characteristics of pupils or highlights, or even depth information from the iris capturing system itself. Our experiments on both synthetic and real data demonstrate that our deblurring algorithm can significantly restore blurred iris patterns and therefore improve the robustness of iris capture.
Keywords :
biometrics (access control); eye; feature extraction; image recognition; image restoration; statistics; camera depth of field; depth information; domain knowledge; highlight characteristics; image deblurring; image quality; iris capture; iris image statistics; iris pattern restoration; iris recognition; pupil characteristics; Biometrics; Cameras; Commercialization; Delay estimation; Humans; Image recognition; Image restoration; Iris recognition; Robustness; Statistics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition, 2009. CVPR 2009. IEEE Conference on
Conference_Location :
Miami, FL
ISSN :
1063-6919
Print_ISBN :
978-1-4244-3992-8
Type :
conf
DOI :
10.1109/CVPR.2009.5206700
Filename :
5206700
Link To Document :
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