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A Bayesian hierarchical model for learning natural scene categories

by: L. Fei-Fei, P. Perona
Computer Vision and Pattern Recognition, 2005. CVPR 2005. IEEE Computer Society Conference on In Computer Vision and Pattern Recognition, 2005. CVPR 2005. IEEE Computer Society Conference on, Vol. 2 (25 June 2005), pp. 524-531 vol. 2, doi:10.1109/cvpr.2005.16  Key: citeulike:1401348

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Abstract

We propose a novel approach to learn and recognize natural scene categories. Unlike previous work, it does not require experts to annotate the training set. We represent the image of a scene by a collection of local regions, denoted as codewords obtained by unsupervised learning. Each region is represented as part of a "theme". In previous work, such themes were learnt from hand-annotations of experts, while our method learns the theme distributions as well as the codewords distribution over the themes without supervision. We report satisfactory categorization performances on a large set of 13 categories of complex scenes.


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