A comparative analysis of machine learning algorithms for hate speech detection in social media

被引:2
|
作者
Omran, Esraa [1 ]
Al Tararwah, Estabraq [2 ]
Al Qundus, Jamal [3 ]
机构
[1] Gulf Univ Sci & Technol, Ctr Appl Math & Bioinformat, Dept Comp Sci, Kuwait, Kuwait
[2] Gulf Univ Sci & Technol, Kuwait, Kuwait
[3] Middle East Univ, Fac Informat Technol, Amman, Jordan
关键词
hate speech detection; machine learning; social media analysis; text classification;
D O I
10.30935/ojcmt/13603
中图分类号
G2 [信息与知识传播];
学科分类号
05 ; 0503 ;
摘要
A detecting and mitigating hate speech in social media, particularly on platforms like Twitter, is a crucial task with significant societal impact. This research study presents a comprehensive comparative analysis of machine learning algorithms for hate speech detection, with the primary goal of identifying an optimal algorithmic combination that is simple, easy to implement, efficient, and yields high detection performance. Through meticulous pre-processing and rigorous evaluation, the study explores various algorithms to determine their suitability for hate speech detection. The focus is finding a combination that balances simplicity, ease of implementation, computational efficiency, and strong performance metrics. The findings reveal that the combination of naive Bayes and decision tree algorithms achieves a high accuracy of 0.887 and an F1-score of 0.885, demonstrating its effectiveness in hate speech detection. This research contributes to identifying a reliable algorithmic combination that meets the criteria of simplicity, ease of implementation, quick processing, and strong performance, providing valuable guidance for researchers and practitioners in hate speech detection in social media. By elucidating the strengths and limitations of various algorithmic combinations, this research enhances the understanding of hate speech detection. It paves the way for developing robust solutions, creating a safer, more inclusive digital environment.
引用
收藏
页数:11
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