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  3. Building the View Graph of a Category by Exploiting Image Realism

Building the View Graph of a Category by Exploiting Image Realism

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DOI
10.7892/boris.82455
Publisher DOI
10.1109/ICCVW.2015.109
Abstract
We propose a weakly supervised method to arrange images of a given category based on the relative pose between the camera and the object in the scene. Relative poses are points on a sphere centered at the object in a given canonical pose, which we call object viewpoints. Our method builds a graph on this sphere by assigning images with similar viewpoint to the same node and by connecting nodes if they are related by a small rotation. The key idea is to exploit a large unlabeled dataset to validate the likelihood of dominant 3D planes of the object geometry. A number of 3D plane hypotheses are evaluated by applying small 3D rotations to each hypothesis and by measuring how well the deformed images match other images in the dataset. Correct hypotheses will result in deformed images that correspond to plausible views of the object, and thus will likely match well other images in the same category. The identified 3D planes are then used to compute affinities between images related by a change of viewpoint. We then use the affinities to build a view graph via a greedy method and the maximum spanning tree.
Date Issued
2015-12
Publication Type
Conference Item
Subject(s)
000 Computer science, knowledge & systems
500 Science > 510 Mathematics
Language(s)
en
Author(s)
Szabo, Attila  
Institut für Informatik (INF)  
Vedaldi, Andrea
Favaro, Paolo  
Institut für Informatik (INF)  
Additional Credits
Institut für Informatik (INF)  
Title of Event
IEEE International Conference on Computer Vision Workshop (ICCVW)
Access(Rights)
restricted
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