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Diversifying Tag Selection Result for Tag Clouds by Enhancing both Coverage and Dissimilarity

机译:通过增强覆盖范围和不相似性,为标签云进行多样化标签选择结果

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摘要

Tag cloud has been a popular facility used by social sites for online resource summarization and navigation. Tag selection, which aims to select a limited number of representative tags from a large set of tags, is the core task for creating tag clouds. Diversity of tag selection result is an important factor that affects user satisfaction. Information coverage and item dissimilarity are two major perspectives for exploring the concept of diversity, while existing tag selection approaches usually consider diversification from single perspective. In this paper, we propose a new approach for diversifying tag selection result, which takes into account both information coverage and tag dissimilarity. We design two sub-objective functions about information coverage and tag dissimilarity, respectively, and construct an objective function as a convex combination of the two sub-objective ones. We also give out a greedy algorithm that can well approximate the objective function. We conduct experiments on 17 datasets extracted from the website of CiteULike to compare our approach with existing ones. The experiment results show that our approach can achieve promising performance of diversification.
机译:标签云已经是社交网站用于在线资源摘要和导航的流行设施。标签选择,旨在从大量标签中选择有限数量的代表标签,是创建标记云的核心任务。标签选择结果的多样性是影响用户满意度的重要因素。信息覆盖范围和项目不同是探索多样性概念的两个主要观点,而现有的标签选择方法通常会考虑单一的角度来实现多样化。在本文中,我们提出了一种用于多样化标签选择结果的新方法,这考虑了信息覆盖范围和标签不相似。我们分别设计了关于信息覆盖率和标签不相似的两个子目标函数,并将客观函数构造为两个子目标凸起的组合。我们还提供一种贪婪的算法,可以很好地近似客观函数。我们对从Citeulike网站提取的17个数据集进行实验,以将我们与现有的方法进行比较。实验结果表明,我们的方法可以实现多样化的效果。

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