SGG: Spinbot, Grammarly and GloVe based Fake News Detection
August 16, 2020 ยท Declared Dead ยท ๐ IEEE International Conference on Multimedia Big Data
"No code URL or promise found in abstract"
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Authors
Akansha Gautam, Koteswar Rao Jerripothula
arXiv ID
2008.06854
Category
cs.CL: Computation & Language
Cross-listed
cs.CY,
cs.MM
Citations
24
Venue
IEEE International Conference on Multimedia Big Data
Last Checked
4 months ago
Abstract
Recently, news consumption using online news portals has increased exponentially due to several reasons, such as low cost and easy accessibility. However, such online platforms inadvertently also become the cause of spreading false information across the web. They are being misused quite frequently as a medium to disseminate misinformation and hoaxes. Such malpractices call for a robust automatic fake news detection system that can keep us at bay from such misinformation and hoaxes. We propose a robust yet simple fake news detection system, leveraging the tools for paraphrasing, grammar-checking, and word-embedding. In this paper, we try to the potential of these tools in jointly unearthing the authenticity of a news article. Notably, we leverage Spinbot (for paraphrasing), Grammarly (for grammar-checking), and GloVe (for word-embedding) tools for this purpose. Using these tools, we were able to extract novel features that could yield state-of-the-art results on the Fake News AMT dataset and comparable results on Celebrity datasets when combined with some of the essential features. More importantly, the proposed method is found to be more robust empirically than the existing ones, as revealed in our cross-domain analysis and multi-domain analysis.
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