Recent Developments and Applications of Social Media AI Cyberbullying Detection Technology in the Education Field (78798)

Session Information:

Session: On Demand
Room: Virtual Video Presentation
Presentation Type: Virtual Presentation

All presentation times are UTC + 9 (Asia/Tokyo)

Cyberbullying has emerged as a pressing concern in various social media platforms, including but not limited to Twitter, Instagram, and Facebook, inflicting both immediate and long-term psychological effects on victims. To combat this pervasive issue, research has sought to build and refine automated systems for cyberbullying detection. This study presents a review of 10 recent AI-powered cyberbullying detection applications, encompassing primarily transformer-based models, their variants and ensemble models. A consolidated framework for designing an effective cyberbullying detection system is also addressed in this paper. It highlights the flow of key components and can serve as a template to ease the design of problem-specific customized systems. Furthermore, AI-powered cyberbullying detection technology has also been widely applied to the education field. Several prevention and intervention applications are outlined and introduced, along with their features and possible drawbacks. Feedback and suggestions from users are also summarized, facilitating the exploration of future research directions.

Chun Fai Carlin Chu, The Hang Seng University of Hong Kong, Hong Kong
Hei Nok Charlotte Choy, University of Toronto, Canada
Yee Nim Sarah Kam, The University of Hong Kong, Hong Kong

About the Presenter(s)
Dr Chu is an Assistant Professor in the Dept of Computer Science at the Hang Seng University of Hong Kong. He is a researcher and practitioner in the area of Machine learning and AI.

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Posted by Clive Staples Lewis

Last updated: 2023-02-23 23:45:00