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TUCAN: Twitter User Centric ANalyzer

机译:Tucan:Twitter用户中心分析仪

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摘要

Twitter has attracted millions of users that generate a humongous flow of information at constant pace. The research community has thus started proposing tools to extract meaningful information from tweets. In this paper, we take a different angle from the mainstream of previous works: we explicitly target the analysis of the timeline of tweets from "single users". We define a framework - named TUCAN - to compare information offered by the target users over time, and to pinpoint recurrent topics or topics of interest. First, tweets belonging to the same time window are aggregated into "bird songs". Several filtering procedures can be selected to remove stop-words and reduce noise. Then, each pair of bird songs is compared using a similarity score to automatically highlight the most common terms, thus highlighting recurrent or persistent topics. TUCAN can be naturally applied to compare bird song pairs generated from timelines of different users. By showing actual results for both public profiles and anonymous users, we show how TUCAN is useful to highlight meaningful information from a target user's Twitter timeline.
机译:Twitter吸引了数百万用户,以不断的速度产生了一个有时的信息流。因此,研究界开始提出从推文中提取有意义的信息的工具。在本文中,我们从以前的作品主流采取了不同的角度:我们明确地针对“单个用户”的推文时间表的分析。我们定义了一个名为tucan的框架 - 将目标用户提供的信息随时间进行比较,并针对感兴趣的反复主题或主题。首先,属于同一时间窗口的推文被聚合为“鸟歌曲”。可以选择几种过滤过程以删除停止单词并降低噪声。然后,使用相似性分数比较每对鸟类歌曲,以自动突出最常见的术语,从而突出显示复制或持久的主题。 TUCAN可以自然地应用于比较从不同用户的时间线生成的鸟歌对。通过显示公共个人资料和匿名用户的实际结果,我们展示了Tucan如何从目标用户的Twitter时间轴突出显示有意义的信息。

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