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Integrating co-occurrence and spatial contexts on patch-based scene segmentation

Monay, Florent
•
Quelhas, Pedro
•
Odobez, Jean-Marc  
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2005

We present a novel approach for contextual segmentation of complex visual scenes, based on the use of bags of local invariant features (visterms) and probabilistic aspect models. Our approach uses context in two ways: (1) by using the fact that specific learned aspects correlate with the semantic classes, which resolves some cases of visual polysemy, and (2) by formalizing the notion that scene context is image-specific -what an individual visterm represents depends on what the rest of the visterms in the same bag represent too-. We demonstrate the validity of our approach on a man-made vs. natural visterm classification problem. Experiments on an image collection of complex scenes show that the approach improves region discrimination, producing satisfactory results, and outperforming a non-contextual method. Furthermore, through the later use of a Markov Random Field model, we also show that co-occurrence and spatial contextual information can be conveniently integrated for improved visterm classification.

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Type
report
Author(s)
Monay, Florent
Quelhas, Pedro
Odobez, Jean-Marc  
Gatica-Perez, Daniel  
Date Issued

2005

Publisher

IDIAP

Subjects

vision

Note

Published in Beyond Patches Workshop, in conjuction with CVPR 2006

URL

URL

http://publications.idiap.ch/downloads/reports/2005/monay-idiap-rr-05-30.pdf
Written at

EPFL

EPFL units
LIDIAP  
Available on Infoscience
June 8, 2006
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/230340
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