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ICCV
2011
IEEE

Large-Scale Image Annotation using Visual Synset

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Large-Scale Image Annotation using Visual Synset
We address the problem of large-scale annotation of web images. Our approach is based on the concept of visual synset, which is an organization of images which are visually-similar and semantically-related. Each visual synset represents a single prototypical visual concept, and has an associated set of weighted annotations. Linear SVM’s are utilized to predict the visual synset membership for unseen image examples, and a weighted voting rule is used to construct a ranked list of predicted annotations from a set of visual synsets. We demonstrate that visual synsets lead to better performance than standard methods on a new annotation database containing more than 200 million images and 300 thousand annotations, which is the largest ever reported.
David Tsai, Yushi Jing, Yi Liu, Henry Rowley, Serg
Added 11 Dec 2011
Updated 11 Dec 2011
Type Journal
Year 2011
Where ICCV
Authors David Tsai, Yushi Jing, Yi Liu, Henry Rowley, Sergey Ioffe, James Rehg
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