FakeNewsNet: A Data Repository with News Content, Social Context and Spatialtemporal Information for Studying Fake News on Social Media
Kai Shu, Deepak Mahudeswaran, Suhang Wang, Dongwon Lee, and Huan Liu

TL;DR
FakeNewsNet is a comprehensive data repository combining news content, social context, and dynamic information to aid fake news detection and research on social media.
Contribution
The paper introduces FakeNewsNet, a novel dataset integrating multiple data sources for fake news analysis, addressing limitations of existing datasets.
Findings
Provides detailed dataset collection methodology
Includes exploratory analysis of social and temporal data
Facilitates research on fake news detection and mitigation
Abstract
Social media has become a popular means for people to consume news. Meanwhile, it also enables the wide dissemination of fake news, i.e., news with intentionally false information, which brings significant negative effects to the society. Thus, fake news detection is attracting increasing attention. However, fake news detection is a non-trivial task, which requires multi-source information such as news content, social context, and dynamic information. First, fake news is written to fool people, which makes it difficult to detect fake news simply based on news contents. In addition to news contents, we need to explore social contexts such as user engagements and social behaviors. For example, a credible user's comment that "this is a fake news" is a strong signal for detecting fake news. Second, dynamic information such as how fake news and true news propagate and how users' opinions…
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Taxonomy
TopicsMisinformation and Its Impacts · Spam and Phishing Detection · Complex Network Analysis Techniques
