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TagClusters: Semantic Aggregation of Collaborative Tags beyond TagClouds

机译:TagClusters:TagClouds之外的协作标签的语义聚合

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TagClouds is a popular visualization for the collaborative tags. However it has some instinct problems such as linguistic issues, high semantic density and poor understanding of hierarchical structure and semantic relation between tags. In this paper we investigate the ways to support semantic understanding of collaborative tags and propose an improved visualization named TagClusters. Based on the semantic analysis of the collaborative tags in Last.fm, the semantic similar tags are clustered into different groups and the visual distance represents the semantic similarity between tags, and thus the visualization offers a better semantic understanding of collaborative tags. A comparative evaluation is conducted with TagClouds and TagClusters based on the same tags collection. The results indicate that TagClusters has advantages in supporting efficient browsing, searching, impression formation and matching. In the future work, we will explore the possibilities of supporting tag recommendation and tag-based Music Retrieval based on TagClusters.
机译:TagClouds是协作标签的流行可视化。然而,它具有一些本能问题,例如语言问题,较高的语义密度以及对标签之间的层次结构和语义关系的理解不足。在本文中,我们研究了支持对协作标签进行语义理解的方法,并提出了一种改进的可视化方法,称为TagClusters。基于Last.fm中协作标签的语义分析,将语义相似的标签聚类为不同的组,并且可视距离表示标签之间的语义相似性,因此可视化可以更好地理解协作标签的语义。基于相同的标签集合,使用TagClouds和TagClusters进行了比较评估。结果表明,TagClusters在支持有效的浏览,搜索,印象形成和匹配方面具有优势。在未来的工作中,我们将探讨支持标签推荐和基于TagClusters的基于标签的音乐检索的可能性。

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