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The making and breaking of camouflage

Abstract:
Not all camouflages are equally effective, as even a partially visible contour or a slight color difference can make the animal stand out and break its camouflage. In this paper, we address the question of what makes a camouflage successful, by proposing three scores for automatically assessing its effectiveness. In particular, we show that camouflage can be measured by the similarity between background and foreground features and boundary visibility. We use these camouflage scores to assess and compare all available camouflage datasets. We also incorporate the proposed camouflage score into a generative model as an auxiliary loss and show that effective camouflage images or videos can be synthesised in a scalable manner. The generated synthetic dataset is used to train a transformer-based model for segmenting camouflaged animals in videos. Experimentally, we demonstrate state-of-the-art camouflage breaking performance on the public MoCA-Mask benchmark.
Publication status:
Published
Peer review status:
Peer reviewed

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Publisher copy:
10.1109/ICCV51070.2023.00083

Authors

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Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Research group:
Visual Geometry Group
Role:
Author
More by this author
Institution:
University of Oxford
Division:
MPLS
Department:
Engineering Science
Research group:
Visual Geometry Group
Oxford college:
Brasenose College
Role:
Author
ORCID:
0000-0002-8945-8573


Publisher:
IEEE
Host title:
Proceedings of the IEEE/CVF International Conference on Computer Vision (ICCV), 2023
Pages:
832-842
Publication date:
2024-01-15
Acceptance date:
2023-07-14
Event title:
International Conference on Computer Vision, 2023
Event location:
Paris, France
Event website:
https://iccv2023.thecvf.com/
Event start date:
2023-10-02
Event end date:
2023-10-06
DOI:
EISSN:
2380-7504
ISSN:
1550-5499
EISBN:
979-8-3503-0718-4
ISBN:
979-8-3503-0719-1


Language:
English
Pubs id:
1544410
Local pid:
pubs:1544410
Deposit date:
2023-10-11
ARK identifier:

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