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Classifying Perspectives on Twitter: Immediate Observation, Affection, and Speculation

机译:在Twitter上进行分类视角:立即观察,感情和猜测

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Popular micro-blogging services such as Twitter enable users to effortlessly publish observations and thoughts about ongoing events. Such social sensing generates a very large pool of rich and up-to-date information. However, the large volume and a fast rate of posting make it very challenging to read through the posts and find out useful information in relevant tweets. In this paper, we propose an automated tweet classification approach that distinguishes three perspectives in which a Twitter user may compose messages, namely Immediate Observation, Affection, and Speculation. Using tweets made about the Ukraine Crisis in 2014, our experimental results show that, with the right choice of features and classifiers, we can generally obtain very satisfying results, with the classification precisions in many cases higher than 0.8. We show that the classification results can be used in event time and location detection, public sentiment analysis, and early rumor detection.
机译:流行的微博客服务,如Twitter,使用户能够毫不费力地发布关于正在进行的事件的观察和想法。这种社交传感产生了一个非常大的丰富和最新信息池。然而,大量和快速的帖子率使得通过帖子读取并在相关推文中找出有用的信息。在本文中,我们提出了一种自动推文分类方法,其区分三个观点,其中推特用户可以构成消息,即即时观察,感情和猜测。我们在2014年使用关于乌克兰危机的推文,我们的实验结果表明,在特征和分类器的正确选择,我们通常可以获得非常令人满意的结果,在许多情况下,分类精确度高于0.8。我们表明分类结果可以在事件时间和位置检测,公共情绪分析和早谣言检测中使用。

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