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An image annotation rectifying method based on deep features
Ghostan Khatchatoorian, A ; Sharif University of Technology | 2018
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- Type of Document: Article
- DOI: 10.1145/3193025.3193035
- Publisher: Association for Computing Machinery , 2018
- Abstract:
- Automatic image annotation methods generate a list of tags for each test image and present it in a matrix structure. To achieve a more accurate annotation, we propose a method with the aim of correcting the tag list. In our method, we detect an indicator for each group of tags and use it to rectify the annotation results. To find a correct indicator, we apply a deep feature vector generated by the “AlexNet” model. Using this indicator, we determine the suitable tags for an image. The purposed method is independent of feature vector, dataset, and annotation method. It can be applied to the currently available annotation methods. Our experiments showed improvement in all annotation methods tested. © 2018 Association for Computing Machinery
- Keywords:
- Deep feature vector ; Image annotation ; Image tags ; Indicator tag ; Rectifying ; Digital signal processing ; Image analysis ; Image retrieval ; Annotation methods ; Feature vectors ; Matrix structure ; Test images
- Source: 2nd International Conference on Digital Signal Processing, ICDSP 2018, 25 February 2018 through 27 February 2018 ; 2018 , Pages 88-92 ; 9781450364027 (ISBN)
- URL: https://dl.acm.org/citation.cfm?doid=3193025.3193035