DocumentCode :
2960227
Title :
Vehicle matching and recognition under large variations of pose and illumination
Author :
Tingbo Hou ; Sen Wang ; Hong Qin
Author_Institution :
Comput. Sci. Dept., Stony Brook Univ., Stony Brook, NY, USA
fYear :
2009
fDate :
20-25 June 2009
Firstpage :
24
Lastpage :
29
Abstract :
Matching vehicles subject to both large pose transformations and extreme illumination variations remains a technically challenging problem in computer vision. In this paper, we develop a new and robust framework toward matching and recognizing vehicles with both highly varying poses and drastically changing illumination conditions. By effectively estimating both pose and illumination conditions, we can re-render vehicles in the reference image to generate the relit image with the same pose and illumination conditions as the target image. We compare the relit image and the re-rendered target image to match vehicles in the original reference image and target image. Furthermore, no training is needed in our framework and re-rendered vehicle images in any other viewpoints and illumination conditions can be obtained from just one single input image. Experimental results demonstrate the robustness and efficacy of our framework, with a potential to generalize our current method from vehicles to handle other types of objects.
Keywords :
computer vision; image matching; object recognition; pose estimation; rendering (computer graphics); road vehicles; solid modelling; 3D vehicle model; computer vision; illumination variation; image rendering; object recognition; pose estimation; reference image; target image; vehicle matching; Computer science; Computer vision; Image generation; Laboratories; Lighting; Principal component analysis; Robustness; Shape; Solid modeling; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition Workshops, 2009. CVPR Workshops 2009. IEEE Computer Society Conference on
Conference_Location :
Miami, FL
ISSN :
2160-7508
Print_ISBN :
978-1-4244-3994-2
Type :
conf
DOI :
10.1109/CVPRW.2009.5204071
Filename :
5204071
Link To Document :
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