Graph-Based Interpretability for Fake News Detection through Topic- and Propagation-Aware Visualization
Kayato Soga,
Soh Yoshida,
Mitsuji Muneyasu
Abstract:In the context of the increasing spread of misinformation via social network services, in this study, we addressed the critical challenge of detecting and explaining the spread of fake news. Early detection methods focused on content analysis, whereas recent approaches have exploited the distinctive propagation patterns of fake news to analyze network graphs of news sharing. However, these accurate methods lack accountability and provide little insight into the reasoning behind their classifications. We aimed … Show more
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