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Cats And Dogs

Abstract:
We investigate the fine grained object categorization problem of determining the breed of animal from an image. To this end we introduce a new annotated dataset of pets covering 37 different breeds of cats and dogs. The visual problem is very challenging as these animals, particularly cats, are very deformable and there can be quite subtle differences between the breeds. We make a number of contributions: first, we introduce a model to classify a pet breed automatically from an image. The model combines shape, captured by a deformable part model detecting the pet face, and appearance, captured by a bag-of-words model that describes the pet fur. Fitting the model involves automatically segmenting the animal in the image. Second, we compare two classification approaches: a hierarchical one, in which a pet is first assigned to the cat or dog family and then to a breed, and a flat one, in which the breed is obtained directly. We also investigate a number of animal and image orientated spatial layouts. These models are very good: they beat all previously published results on the challenging ASIRRA test (cat vs dog discrimination). When applied to the task of discriminating the 37 different breeds of pets, the models obtain an average accuracy of about 59%, a very encouraging result considering the difficulty of the problem. © 2012 IEEE.
Publication status:
Published

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Publisher copy:
10.1109/CVPR.2012.6248092

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Role:
Author


Journal:
2012 IEEE CONFERENCE ON COMPUTER VISION AND PATTERN RECOGNITION (CVPR) More from this journal
Pages:
3498-3505
Publication date:
2012-01-01
DOI:
ISSN:
1063-6919


Language:
English
Pubs id:
pubs:355067
UUID:
uuid:4f79662d-2e2d-4cc4-92e1-90419eea623b
Local pid:
pubs:355067
Source identifiers:
355067
Deposit date:
2013-11-17
ARK identifier:

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