Automatic image labelling using similarity measures

Václav Uher, Radim Bürget, Jan Karásek, Jan Mašek, Malay Kishore Dutta, Anushikha Singh · 2014

Scene classification based on global features. It can be used, for example, for annotating large databases of photos. The whole process has several steps. The first step is features extraction, and then the distance between a new image and reference images is calculated. A model is trained to classify new images based on this distance. The model was created using the Naïve Bayes classifier. To improve accuracy the forward selection was used, which optimizes the selection of a group of attributes. The overall performance on the testing dataset was 69.76%.

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