English offensive text detection using CNN based Bi-GRU model

September 24, 2024 ยท Declared Dead ยท ๐Ÿ› 2024 2nd International Conference on Information and Communication Technology (ICICT)

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Authors Tonmoy Roy, Md Robiul Islam, Asif Ahammad Miazee, Anika Antara, Al Amin, Sunjim Hossain arXiv ID 2409.15652 Category cs.CL: Computation & Language Cross-listed cs.LG, cs.SI Citations 3 Venue 2024 2nd International Conference on Information and Communication Technology (ICICT) Last Checked 5 months ago
Abstract
Over the years, the number of users of social media has increased drastically. People frequently share their thoughts through social platforms, and this leads to an increase in hate content. In this virtual community, individuals share their views, express their feelings, and post photos, videos, blogs, and more. Social networking sites like Facebook and Twitter provide platforms to share vast amounts of content with a single click. However, these platforms do not impose restrictions on the uploaded content, which may include abusive language and explicit images unsuitable for social media. To resolve this issue, a new idea must be implemented to divide the inappropriate content. Numerous studies have been done to automate the process. In this paper, we propose a new Bi-GRU-CNN model to classify whether the text is offensive or not. The combination of the Bi-GRU and CNN models outperforms the existing model.
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