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EventRiver: Visually Exploring Text Collections with Temporal References

机译:EventRiver:使用时间引用在视觉上探索文本集合

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摘要

Many text collections with temporal references, such as news corpora and weblogs, are generated to report and discuss real life events. Thus, event-related tasks, such as detecting real life events that drive the generation of the text documents, tracking event evolutions, and investigating reports and commentaries about events of interest, are important when exploring such text collections. To incorporate and leverage human efforts in conducting such tasks, we propose a novel visual analytics approach named EventRiver. EventRiver integrates event-based automated text analysis and visualization to reveal the events motivating the text generation and the long term stories they construct. On the visualization, users can interactively conduct tasks such as event browsing, tracking, association, and investigation. A working prototype of EventRiver has been implemented for exploring news corpora. A set of case studies, experiments, and a preliminary user test have been conducted to evaluate its effectiveness and efficiency.
机译:生成了许多带有时间参考的文本集,例如新闻语料库和博客,以报告和讨论现实生活中的事件。因此,与事件相关的任务,例如检测驱动文本文档生成的现实事件,跟踪事件的演变以及调查有关感兴趣事件的报告和评论,在探索此类文本集合时非常重要。为了将人类的努力纳入其中并加以利用,我们提出了一种新颖的视觉分析方法,称为EventRiver。 EventRiver集成了基于事件的自动文本分析和可视化功能,以揭示激发文本生成及其构建的长期故事的事件。在可视化上,用户可以交互地执行任务,例如事件浏览,跟踪,关联和调查。 EventRiver的工作原型已经实现,用于探索新闻语料库。已经进行了一系列案例研究,实验和初步的用户测试,以评估其有效性和效率。

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