论文标题

TrollHunter2020:2020年美国选举期间在Twitter上实时检测到Twitter上的巨魔叙事

TrollHunter2020: Real-Time Detection of Trolling Narratives on Twitter During the 2020 US Elections

论文作者

Jachim, Peter, Sharevski, Filipo, Pieroni, Emma

论文摘要

本文介绍了TrollHunter2020,这是我们在2020年美国选举期间在Twitter上寻找拖钓叙事的一种实时检测机制。在Twitter上形成巨魔叙事是对两极分化的替代解释,例如2020年美国选举,目的是进行信息操作或引起情感反应。因此,检测拖钓叙事是在Twitter上保留建设性论述并消除错误信息的急切步骤。使用现有技术,这需要时间和大量数据,在迅速变化的选举周期中,可能无法提供高风险的选举周期。为了克服这一限制,我们开发了TrollHunter2020,以实时寻找巨魔,其中数十个趋势的Twitter主题和标签与候选人的辩论,选举之夜和选举相对应。 trollhunter2020收集趋势数据,并利用对应分析来检测顶级名词和动词之间在构造巨魔叙事时使用的有意义的关系,而它们在Twitter上出现。我们的结果表明,TrollHunter2020确实在不断发展的两极分化事件的早期阶段就捕捉了新兴的巨魔叙事。我们讨论了TrollHunter2020的效用,以早期检测信息操作或拖钓的效果,以及其在支持平台上围绕两极分化主题的限制性论述中使用的含义。

This paper presents TrollHunter2020, a real-time detection mechanism we used to hunt for trolling narratives on Twitter during the 2020 U.S. elections. Trolling narratives form on Twitter as alternative explanations of polarizing events like the 2020 U.S. elections with the goal to conduct information operations or provoke emotional response. Detecting trolling narratives thus is an imperative step to preserve constructive discourse on Twitter and remove an influx of misinformation. Using existing techniques, this takes time and a wealth of data, which, in a rapidly changing election cycle with high stakes, might not be available. To overcome this limitation, we developed TrollHunter2020 to hunt for trolls in real-time with several dozens of trending Twitter topics and hashtags corresponding to the candidates' debates, the election night, and the election aftermath. TrollHunter2020 collects trending data and utilizes a correspondence analysis to detect meaningful relationships between the top nouns and verbs used in constructing trolling narratives while they emerge on Twitter. Our results suggest that the TrollHunter2020 indeed captures the emerging trolling narratives in a very early stage of an unfolding polarizing event. We discuss the utility of TrollHunter2020 for early detection of information operations or trolling and the implications of its use in supporting a constrictive discourse on the platform around polarizing topics.

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