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Communication Dans Un Congrès Année : 2014

Markerless identification and tracking for scalable image database

Résumé

In this paper we present a novel approach for object identification and tracking in large image datasets. Objects of interest are represented by feature points and descriptors extracted and compared to a set of reference data. An optimized matching paradigm is designed to deal with scalable image databases while keeping a good recognition rate in real-life environment conditions. Experiments are conducted to evaluate the effectiveness of the method and the obtained results demonstrate a true interest of the proposed approach
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Dates et versions

hal-01263083 , version 1 (27-01-2016)

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Madjid Maidi, Marius Preda, Yassine Lehiani. Markerless identification and tracking for scalable image database. ICIP 2014 : 21th IEEE International Conference on Image Processing, Oct 2014, Paris, France. pp.1 - 6, ⟨10.1109/ICIP.2014.7025080⟩. ⟨hal-01263083⟩
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