Weakly Supervised Learning for Analyzing Political Campaigns on Facebook

Tunazzina Islam, Shamik Roy, Dan Goldwasser
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引用次数: 2

Abstract

Social media platforms are currently the main channel for political messaging, allowing politicians to target specific demographics and adapt based on their reactions. However, making this communication transparent is challenging, as the messaging is tightly coupled with its intended audience and often echoed by multiple stakeholders interested in advancing specific policies. Our goal in this paper is to take a first step towards understanding these highly decentralized settings. We propose a weakly supervised approach to identify the stance and issue of political ads on Facebook and analyze how political campaigns use some kind of demographic targeting by location, gender, or age. Furthermore, we analyze the temporal dynamics of the political ads on election polls.
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弱监督学习分析Facebook上的政治运动
社交媒体平台目前是政治信息传递的主要渠道,允许政治家针对特定的人口统计数据,并根据他们的反应进行调整。然而,使这种沟通透明是具有挑战性的,因为消息传递与目标受众紧密结合,并且经常得到对推进特定政策感兴趣的多个利益相关者的响应。我们在本文中的目标是迈出理解这些高度分散的设置的第一步。我们提出了一种弱监督的方法来识别Facebook上政治广告的立场和问题,并分析政治竞选活动如何根据位置、性别或年龄使用某种人口定位。此外,我们分析了政治广告在选举民意调查中的时间动态。
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