2022
DOI: 10.48550/arxiv.2209.08799
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Probing Spurious Correlations in Popular Event-Based Rumor Detection Benchmarks

Abstract: As social media becomes a hotbed for the spread of misinformation, the crucial task of rumor detection has witnessed promising advances fostered by open-source benchmark datasets. Despite being widely used, we find that these datasets suffer from spurious correlations, which are ignored by existing studies and lead to severe overestimation of existing rumor detection performance. The spurious correlations stem from three causes: (1) event-based data collection and labeling schemes assign the same veracity labe… Show more

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