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Communication Dans Un Congrès Année : 2010

Spatio-temporal modeling for knowledge discovery in satellite image databases

Résumé

Knowledge discovery from satellite images in spatio-temporal context remains one of the major challenges in the remote sensing field. It is, always, difficult for a user to manually extract useful information especially when processing a large collection of satellite images. Thus, we need to use automatic knowledge discovery in order to develop intelligent image interpretation systems. In this paper, we present a high-level approach for modeling spatio-temporal knowledge from satellite images. We also propose to use a multi-approach segmentation involving several segmentation methods which help improving images modeling and interpretation. The experiments, made on LANDSAT scenes, show that our approach outperforms classical methods in image segmentation and are able to predict spatio-temporal changes of satellite images.
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Dates et versions

hal-00472871 , version 1 (13-04-2010)

Identifiants

  • HAL Id : hal-00472871 , version 1

Citer

Wadii Boulila, Imed Riadh Farah, Karim Saheb Ettabaa, Basel Solaiman, Henda Ben Guezala. Spatio-temporal modeling for knowledge discovery in satellite image databases. CORIA 2010 : septième édition de la conférence en recherche d'information et applications, Mar 2010, Sousse, Tunisia. pp.35-49. ⟨hal-00472871⟩
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