UKElectionNarratives: A Dataset of Misleading Narratives Surrounding Recent UK General Elections

May 08, 2025 ยท Declared Dead ยท ๐Ÿ› International Conference on Web and Social Media

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Authors Fatima Haouari, Carolina Scarton, Nicolรฒ Faggiani, Nikolaos Nikolaidis, Bonka Kotseva, Ibrahim Abu Farha, Jens Linge, Kalina Bontcheva arXiv ID 2505.05459 Category cs.CL: Computation & Language Cross-listed cs.SI Citations 0 Venue International Conference on Web and Social Media Last Checked 6 months ago
Abstract
Misleading narratives play a crucial role in shaping public opinion during elections, as they can influence how voters perceive candidates and political parties. This entails the need to detect these narratives accurately. To address this, we introduce the first taxonomy of common misleading narratives that circulated during recent elections in Europe. Based on this taxonomy, we construct and analyse UKElectionNarratives: the first dataset of human-annotated misleading narratives which circulated during the UK General Elections in 2019 and 2024. We also benchmark Pre-trained and Large Language Models (focusing on GPT-4o), studying their effectiveness in detecting election-related misleading narratives. Finally, we discuss potential use cases and make recommendations for future research directions using the proposed codebook and dataset.
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