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conference paper

Joint Pose Estimator and Feature Learning for Object Detection

Ali, Karim  
•
Fleuret, Francois  
•
Hasler, David
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2009
2009 Ieee 12Th International Conference On Computer Vision (Iccv)
IEEE International Conference on Computer Vision

A new learning strategy for object detection is presented. The proposed scheme forgoes the need to train a collection of detectors dedicated to homogeneous families of poses, and instead learns a single classifier that has the inherent ability to deform based on the signal of interest. Specifically, we train a detector with a standard AdaBoost procedure by using combinations of pose-indexed features and pose estimators instead of the usual image features. This allows the learning process to select and combine various estimates of the pose with features able to implicitly compensate for variations in pose. We demonstrate that a detector built in such a manner provides noticeable gains on two hand video sequences and analyze the performance of our detector as these data sets are synthetically enriched in pose while not increased in size.

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Type
conference paper
DOI
10.1109/ICCV.2009.5459304
Web of Science ID

WOS:000294955300177

Author(s)
Ali, Karim  
Fleuret, Francois  
Hasler, David
Fua, Pascal  
Date Issued

2009

Publisher

Ieee Service Center, 445 Hoes Lane, Po Box 1331, Piscataway, Nj 08855-1331 Usa

Published in
2009 Ieee 12Th International Conference On Computer Vision (Iccv)
ISBN of the book

978-1-4244-4419-9

Start page

1373

End page

1380

Subjects

Image Processing

•

Computer Vision

•

Machine Learning

•

Object Detection

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIDIAP  
CVLAB  
Event name
IEEE International Conference on Computer Vision
Available on Infoscience
February 26, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/47718
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