Web image co-clustering based on tag and image content fusion

In Web 2.0 applications, users always label digital images using textual descriptions, which are also called tags. As a result, a web image usually carries both tag and visual content information. In order to improve the retrieval performance of web images, in this paper, we propose an error-driven...

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Hauptverfasser: Jie Chen, Jianlong Tan, Xiangzhou Yin, Hao Liao
Format: Tagungsbericht
Sprache:eng
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Beschreibung
Zusammenfassung:In Web 2.0 applications, users always label digital images using textual descriptions, which are also called tags. As a result, a web image usually carries both tag and visual content information. In order to improve the retrieval performance of web images, in this paper, we propose an error-driven fusion co-clustering algorithm, which combines images' tags, visual contents together for analysis. Experimental results demonstrate that our algorithm outperforms other simple clustering methods.
ISSN:2374-0272
DOI:10.1109/ICNIDC.2010.5657793