Fact-checking, fake news, propaganda, media bias, and the covid-19 infodemic

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Abstract

Social media have democratized content creation and have made it easy for anybody to spread information online. However, stripping traditional media from their gate-keeping role has left the public unprotected against biased, deceptive and disinformative content, which could now travel online at breaking-news speed and influence major public events. For example, during the COVID-19 pandemic, a new blending of medical and political disinformation has given rise to the first global infodemic. We offer an overview of the emerging and inter-connected research areas of fact-checking, disinformation, "fake news'', propaganda, and media bias detection. We explore the general fact-checking pipeline and important elements thereof such as check-worthiness estimation, spotting previously fact-checked claims, stance detection, source reliability estimation, detection of persuasion techniques, and detecting malicious users in social media. We also cover large-scale pre-trained language models, and the challenges and opportunities they offer for generating and for defending against neural fake news. Finally, we discuss the ongoing COVID-19 infodemic.

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APA

Nakov, P., Da San Martino, G., & Alam, F. (2022). Fact-checking, fake news, propaganda, media bias, and the covid-19 infodemic. In WSDM 2022 - Proceedings of the 15th ACM International Conference on Web Search and Data Mining (pp. 1632–1634). Association for Computing Machinery, Inc. https://doi.org/10.1145/3488560.3501395

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