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What Do People Want in Microblogs? Measuring Interestingness of Hashtags in Twitter

机译:人们在微博中想要什么?在Twitter中衡量标签的趣味性

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When micro logging becomes a very popular social media, finding interesting posts from high volume stream of user posts is a challenging research problem. To organize large number of posts, users can assign tags to posts so that these posts can be navigated and searched by tag. In this paper, we focus on modeling the interestingness of hash tags in Twitter, the largest and most active micro logging site. We propose to first construct communities based on both follow links and tagged interactions. We then measure the dispersion and divergence of users and tweets using hash tags among the constructed communities. The interestingness of hash tags are then derived from these community-based dispersion and divergence features. We further introduce a supervised approach to rank hash tags by interestingness. Our experiments on a Twitter dataset show that the proposed approach achieves a fairly good performance.
机译:当微型日志记录成为一种非常流行的社交媒体时,从大量用户帖子中查找有趣的帖子是一个具有挑战性的研究问题。为了组织大量的帖子,用户可以为帖子分配标签,以便可以通过标签导航和搜索这些帖子。在本文中,我们着重于在最大的,最活跃的微日志站点Twitter中对哈希标签的趣味性进行建模。我们建议首先基于跟随链接和标记的交互来构建社区。然后,我们使用散列标签在构建的社区之间测量用户和推文的散布和散布。然后,从这些基于社区的散布和散布特征中得出哈希标签的趣味性。我们进一步介绍了一种通过兴趣对哈希标签进行排名的监督方法。我们在Twitter数据集上的实验表明,所提出的方法取得了相当不错的性能。

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