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Real-Time Timeline Summarisation for High-Impact Events in Twitter

机译:Twitter中高影响事件的实时时间表汇总

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摘要

Twitter has become a valuable source of event-related information, namely, breaking news and local event reports. Due to its capability of transmitting information in real-time, Twitter is further exploited for timeline summarisation of high-impact events, such as protests, accidents, natural disasters or disease outbreaks. Such summaries can serve as important event digests where users urgently need information, especially if they are directly affected by the events. In this paper, we study the problem of timeline summarisation of high-impact events that need to be generated in real-time. Our proposed approach includes four stages: classification of realworld events reporting tweets, online incremental clustering, post-processing and sub-events summarisation. We conduct a comprehensive evaluation of different stages on the "Ebola outbreak" tweet stream, and compare our approach with several baselines, to demonstrate its effectiveness. Our approach can be applied as a replacement of a manually generated timeline and provides early alarms for disaster surveillance.
机译:Twitter已成为活动相关信息的宝贵来源,即突破新闻和当地事件报告。由于其实时传输信息的能力,推特进一步利用了对高影响事件的时间表汇总,例如抗议活动,事故,自然灾害或疾病爆发。这些摘要可以作为用户迫切需要信息的重要事件摘要,特别是如果它们直接受事件影响。在本文中,我们研究了需要实时生成的高冲击事件的时间表概括问题。我们所提出的方法包括四个阶段:RealWorld事件的分类报告推文,在线增量聚类,后处理和子事件汇总。我们对“埃博拉疫情”推文流的不同阶段进行了全面评估,并将我们的方法与几个基线进行了比较,以证明其有效性。我们的方法可以应用于替代手动生成的时间表,并为灾害监测提供早期警报。

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