2005 • In Schmid, Cordelia; Soatto, Stefano; Tomasi, Carlo (Eds.) Proceedings of the IEEE International Conference on Computer Vision and Pattern Recognition (CVPR 2005)
[en] We present a novel, generic image classification method based on a recent machine learning algorithm (ensembles of extremely randomized decision trees). Images are classified using randomly extracted subwindows that are suitably normalized to yield robustness to certain image transformations. Our method is evaluated on four very different, publicly available datasets (COIL-100, ZuBuD, ETH-80, WANG). Our results show that our automatic approach is generic and robust to illumination, scale, and viewpoint changes. An extension of the method is proposed to improve its robustness with respect to rotation changes.
Disciplines :
Computer science
Author, co-author :
Marée, Raphaël ; Université de Liège - ULiège > Department of Electrical Engineering and Computer Science > Systèmes et Modélisation
Geurts, Pierre ; Université de Liège - ULiège > Dép. d'électric., électron. et informat. (Inst.Montefiore) > Systèmes et modélisation
Piater, Justus ; Université de Liège - ULiège > Dép. d'électric., électron. et informat. (Inst.Montefiore) > INTELSIG Group
Wehenkel, Louis ; Université de Liège - ULiège > Dép. d'électric., électron. et informat. (Inst.Montefiore) > Systèmes et modélisation
Language :
English
Title :
Random Subwindows for Robust Image Classification
Publication date :
2005
Event name :
IEEE International Conference on Computer Vision and Pattern Recognition (CVPR)
Event organizer :
IEEE
Event place :
San Diego, United States
Audience :
International
Main work title :
Proceedings of the IEEE International Conference on Computer Vision and Pattern Recognition (CVPR 2005)
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