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Raimond: Quantitative Data Extraction from Twitter to Describe Events

机译:raimond:从Twitter描述事件的定量数据提取

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Social media play a decisive role in communicating and spreading information during global events. In particular, real-time microblogging platforms such as Twitter have become prevalent. Researchers have used microblogging for a number of tasks, including past events analysis, predictions, and information retrieval. Nevertheless, little attention has been given to quantitative data extraction. In this paper, we address two questions: can we develop a mechanism to extract quantitative data from a collection of tweets, and can we use the salient findings to describe an event? To answer the first question, we introduce Raimond, a virtual text curator, specialized in quantitative data extraction from Twitter. To address the second question, we use our system on three events and evaluate its output using a crowdsourcing strategy. We demonstrate the effectiveness of our approach with a number of real world examples.
机译:社交媒体在全球活动期间在沟通和传播信息方面发挥着决定性的作用。特别是,诸如Twitter之类的实时微博平台已经普遍存在。研究人员使用了多个任务的微博,包括过去的事件分析,预测和信息检索。然而,已经对定量数据提取的注意力很少。在本文中,我们解决了两个问题:我们可以制定一种机制,以从一系列推文中提取量化数据,我们可以使用突出的发现来描述一个事件吗?要回答第一个问题,我们介绍了一个专门从Twitter的定量数据提取的虚拟文本策展人的raimond。要解决第二个问题,我们将在三个事件上使用我们的系统,并使用众包策略评估其输出。我们展示了我们对许多现实世界的效果的有效性。

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