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A Survey of COVID-19 Misinformation: Datasets, Detection Techniques and Open Issues (2110.00737v2)

Published 2 Oct 2021 in cs.SI

Abstract: Misinformation during pandemic situations like COVID-19 is growing rapidly on social media and other platforms. This expeditious growth of misinformation creates adverse effects on the people living in the society. Researchers are trying their best to mitigate this problem using different approaches based on Machine Learning (ML), Deep Learning (DL), and NLP. This survey aims to study different approaches of misinformation detection on COVID-19 in recent literature to help the researchers in this domain. More specifically, we review the different methods used for COVID-19 misinformation detection in their research with an overview of data pre-processing and feature extraction methods to get a better understanding of their work. We also summarize the existing datasets which can be used for further research. Finally, we discuss the limitations of the existing methods and highlight some potential future research directions along this dimension to combat the spreading of misinformation during a pandemic.

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Authors (5)
  1. A. R. Sana Ullah (1 paper)
  2. Anupam Das (36 papers)
  3. Anik Das (5 papers)
  4. Muhammad Ashad Kabir (44 papers)
  5. Kai Shu (88 papers)
Citations (13)