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Intrinsic and Extrinsic Evaluation of Spatiotemporal Text Representations in Twitter Streams

机译:在Twitter流中的瞬间和外在评估时空文本表示

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摘要

Language in social media is a dynamic system, constantly evolving and adapting, with words and concepts rapidly emerging, disappearing, and changing their meaning. These changes can be estimated using word representations in context, over time and across locations. A number of methods have been proposed to track these spatiotemporal changes but no general method exists to evaluate the quality of these representations. Previous work largely focused on qualitative evaluation, which we improve by proposing a set of visualizations that highlight changes in text representation over both space and time. We demonstrate usefulness of novel spatiotemporal representations to explore and characterize specific aspects of the corpus of tweets collected from European countries over a two-week period centered around the terrorist attacks in Brussels in March 2016. In addition, we quantitatively evaluate spatiotemporal representations by feeding them into a downstream classification task - event type prediction. Thus, our work is the first to provide both intrinsic (qualitative) and extrinsic (quantitative) evaluation of text representations for spatiotemporal trends.
机译:语言在社会化媒体是一个动态系统,不断地发展和适应,以词汇和概念迅速崛起,消失,并改变它们的含义。这些变化可以在上下文中使用文字表述估计,随着时间和地点。许多方法被提出来跟踪这些时空变化,但没有通用的方法存在评价这些陈述的质量。以前的工作主要集中于定性评价,这是我们通过提出一套可视化是亮点文本表示在空间和时间变化的提高。我们证明小说的时空陈述的有效性,探索并在两个星期内从欧洲国家收集鸣叫的主体的特征分析具体方面是围绕在布鲁塞尔的恐怖袭击事件在2016年3月。此外,我们定量评价时空表示喂养它们到下游的分类任务 - 事件类型的预测。因此,我们的工作是第一个为时空趋势提供内源性(定性)和外源性(定量)文本表示的评价。

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