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conference paper

A Constrained Latent Variable Model

Varol, Aydin  
•
Salzmann, Mathieu  
•
Fua, Pascal  
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2012
2012 IEEE Conference on Computer Vision and Pattern Recognition
IEEE Conference on Computer Vision and Pattern Recognition

Latent variable models provide valuable compact representations for learning and inference in many computer vision tasks. However, most existing models cannot directly encode prior knowledge about the specific problem at hand. In this paper, we introduce a constrained latent variable model whose generated output inherently accounts for such knowledge. To this end, we propose an approach that explicitly imposes equality and inequality constraints on the model's output during learning, thus avoiding the computational burden of having to account for these constraints at inference. Our learning mechanism can exploit non-linear kernels, while only involving sequential closed-form updates of the model parameters. We demonstrate the effectiveness of our constrained latent variable model on the problem of non-rigid 3D reconstruction from monocular images, and show that it yields qualitative and quantitative improvements over several baselines.

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Type
conference paper
DOI
10.1109/CVPR.2012.6247934
Web of Science ID

WOS:000309166202052

Author(s)
Varol, Aydin  
Salzmann, Mathieu  
Fua, Pascal  
Urtasun, Raquel  
Date Issued

2012

Publisher

Ieee

Publisher place

New York

Published in
2012 IEEE Conference on Computer Vision and Pattern Recognition
ISBN of the book

978-1-4673-1228-8

Total of pages

8

Start page

2248

End page

2255

Editorial or Peer reviewed

NON-REVIEWED

Written at

EPFL

EPFL units
CVLAB  
Event nameEvent placeEvent date
IEEE Conference on Computer Vision and Pattern Recognition

Providence, Rhode Island, USA

June 16-21, 2012

Available on Infoscience
April 17, 2012
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/79381
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