TweetSense:通过利用Twitter中的社交信号来恢复孤儿推文的上下文

M. Vijayakumar, Tejas Mallapura Umamaheshwar, S. Kambhampati, Kartik Talamadupula
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引用次数: 1

摘要

随着Twitter的普及和tweet数量的急剧增加,标签自然演变为Twitter上事实上的上下文提供/分类机制。尽管它们被广泛采用,部分是由于标签推荐系统的推动,但非专业用户继续生成没有标签的推文。当这样的“孤儿”推文出现在(浏览)用户的时间线上时,很难理解它们的背景。在本文中,我们提出了一个名为TweetSense的系统,旨在通过根据缺失的标签恢复其上下文来纠正此类孤儿推文。TweetSense通过使用孤儿推文的内容和社交网络功能来实现上下文恢复。我们描述了上下文恢复问题,介绍了TweetSense的细节,并对其在700万条tweet语料库中的有效性进行了系统评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
TweetSense: Context Recovery for Orphan Tweets by Exploiting Social Signals in Twitter
As the popularity of Twitter, and the volume of tweets increased dramatically, hashtags have naturally evolved to become a de facto context providing/categorizing mechanism on Twitter. Despite their wide-spread adoption, fueled in part by hashtag recommendation systems, lay users continue to generate tweets without hashtags. When such "orphan" tweets show up in a (browsing) user's time-line, it is hard to make sense of their context. In this paper, we present a system called TweetSense which aims to rectify such orphan tweeets by recovering their context in terms of their missing hashtags. TweetSense enables this context recovery by using both the content and social network features of the orphan tweet. We characterize the context recovery problem, present the details of TweetSense and present a systematic evaluation of its effectiveness over a 7 million tweet corpus.
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