DocumentCode :
1639880
Title :
A Bayesian approach to image-based visual hull reconstruction
Author :
Grauman, Kristen ; Shakhnarovich, Gregory ; Darrell, Trevor
Author_Institution :
Artificial Intelligence Lab., Massachusetts Inst. of Technol., MA, USA
Volume :
1
fYear :
2003
Abstract :
We present a Bayesian approach to image-based visual hull reconstruction. The 3D (three-dimensional) shape of an object of a known class is represented by sets of silhouette views simultaneously observed from multiple cameras. We show how the use of a class-specific prior in a visual hull reconstruction can reduce the effect of segmentation errors from the silhouette extraction process. In our representation, 3D information is implicit in the joint observations of multiple contours from known viewpoints. We model the prior density using a probabilistic principal components analysis-based technique and estimate a maximum a posteriori reconstruction of multi-view contours. The proposed method is applied to a dataset of pedestrian images, and improvements in the approximate 3D models under various noise conditions are shown.
Keywords :
Bayes methods; computer vision; edge detection; image denoising; image reconstruction; image representation; image segmentation; principal component analysis; stereo image processing; 3D model; 3D object shape; Bayesian approach; image reconstruction; image representation; image segmentation; image-based visual hull reconstruction; maximum a posteriori reconstruction; multiple cameras; multiple contours; multiview contour; pedestrian image; probabilistic principal component analysis; silhouette extraction; silhouette view; Artificial intelligence; Bayesian methods; Cameras; Data mining; Image recognition; Image reconstruction; Image segmentation; Laboratories; Shape; Uncertainty;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Vision and Pattern Recognition, 2003. Proceedings. 2003 IEEE Computer Society Conference on
ISSN :
1063-6919
Print_ISBN :
0-7695-1900-8
Type :
conf
DOI :
10.1109/CVPR.2003.1211353
Filename :
1211353
Link To Document :
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