Multiverse: Multilingual Evidence for Fake News Detection

November 25, 2022 ยท Declared Dead ยท ๐Ÿ› Journal of Imaging

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Authors Daryna Dementieva, Mikhail Kuimov, Alexander Panchenko arXiv ID 2211.14279 Category cs.CL: Computation & Language Cross-listed cs.IR Citations 11 Venue Journal of Imaging Last Checked 5 months ago
Abstract
Misleading information spreads on the Internet at an incredible speed, which can lead to irreparable consequences in some cases. It is becoming essential to develop fake news detection technologies. While substantial work has been done in this direction, one of the limitations of the current approaches is that these models are focused only on one language and do not use multilingual information. In this work, we propose Multiverse -- a new feature based on multilingual evidence that can be used for fake news detection and improve existing approaches. The hypothesis of the usage of cross-lingual evidence as a feature for fake news detection is confirmed, firstly, by manual experiment based on a set of known true and fake news. After that, we compared our fake news classification system based on the proposed feature with several baselines on two multi-domain datasets of general-topic news and one fake COVID-19 news dataset showing that in additional combination with linguistic features it yields significant improvements.
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