Leveraging Text Sentiment Analysis for Cyberbullying Prevention
ID:78 View Protection:ATTENDEE Updated Time:2025-12-21 13:00:39 Hits:461 Online

Start Time:2025-12-30 14:45(Asia/Amman)

Duration:15min

Session:S5 Track 5: Emerging Trends of AI/ML » S5-2Track 5: Emerging Trends of AI/ML

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Abstract
In today’s digital era, cyberbullying is a rising phenomenon with major effects on victims’ mental health and well-being. This Master’s thesis report investigates cyberbullying and presents a unique strategy to prevent it through the use of text sentiment analysis algorithms. The suggested Cyberbullying Prevention using Text Sentiment Analysis Algorithm compares the performance of three models: Convolutional Neural Network-Long Short Term Memory (CNN-LSTM), Support Vector Machine (SVM), and Naive Bayes. The models were trained using a dataset of cyberbullying-related social media postings and communications. The results of the experiment show that the SVM model outperformed the other two models with an accuracy of 92% in detecting instances of cyberbullying. The CNN-LSTM model achieved an accuracy of 88%, while the Naive Bayes model achieved an accuracy of 83%. Social media businesses, schools, and other institutions can utilize the suggested method to detect and prevent cyberbullying in online communication. By detecting cyberbullying early on, steps may be taken to protect victims and foster a safer and better online environment. This study emphasizes the efficacy of utilizing text sentiment analysis algorithms to combat cyberbullying and provides useful insights into the performance of various models in identifying cyberbullying.
 
Keywords
cyberbull,social media,machine learning,deep learning,classification,convolutional neural network,long short term memory,Natural Language Processing,sentiment analysis,twitter
Speaker
Ali Rachini
Assistant Professor Holy Spirit University of Kaslik

Submission Author
Samir Haddad University of Balamand
Kassem Hamze Islamic University Of Lebanon
Ali Rachini Holy Spirit University of Kaslik
Joseph Merhej lebanese university
Jinane Sayah University of Balamand
Saeed El-Ghareeb university of the Basque country
Chadi Kallab Lebanese American University
Abbas Al-Jawahiry islamic university of lebanon
Bilal Alalawi islamic university of lebanon
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Important Date
  • Conference Date

    Dec 29

    2025

    to

    Dec 31

    2025

  • Dec 20 2025

    Draft paper submission deadline

  • Dec 31 2025

    Contribution Submission Deadline

  • Dec 31 2025

    Registration deadline

Sponsored By
United Societies of Science
Organized By
Zarqa University
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