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2018 | OriginalPaper | Chapter

A Flexible Framework for the Evaluation of Unsupervised Image Annotation

Authors : Luis Pellegrin, Hugo Jair Escalante, Manuel Montes-y-Gómez, Mauricio Villegas, Fabio A. González

Published in: Progress in Pattern Recognition, Image Analysis, Computer Vision, and Applications

Publisher: Springer International Publishing

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Abstract

Automatic Image Annotation (AIA) consists in assigning keywords to images describing their visual content. A prevalent way to address the AIA task is based on supervised learning. However, the unsupervised approach is a new alternative that makes a lot of sense when there are not manually labeled images to train supervised techniques. AIA methods are typically evaluated using supervised learning performance measures, however applying these kind of measures to unsupervised methods is difficult and unfair. The main restriction has to do with the fact that unsupervised methods use an unrestricted annotation vocabulary while supervised methods use a restricted one. With the aim to alleviate the unfair evaluation, in this paper we propose a flexible evaluation framework that allows us to compare coverage and relevance of the assigned words by unsupervised automatic image annotation (UAIA) methods. We show the robustness of our framework through a set of experiments where we evaluated the output of both, unsupervised and supervised methods.

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Metadata
Title
A Flexible Framework for the Evaluation of Unsupervised Image Annotation
Authors
Luis Pellegrin
Hugo Jair Escalante
Manuel Montes-y-Gómez
Mauricio Villegas
Fabio A. González
Copyright Year
2018
DOI
https://doi.org/10.1007/978-3-319-75193-1_61

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