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Experts and Machines against Bullies: A Hybrid Approach to Detect Cyberbullies

机译:专家和反对欺凌者的机器:检测网络欺凌的混合方法

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Cyberbullying is becoming a major concern in online environments with troubling consequences. However, most of the technical studies have focused on the detection of cyberbullying through identifying harassing comments rather than preventing the incidents by detecting the bullies. In this work we study the automatic detection of bully users on YouTube. We compare three types of automatic detection: an expert system, supervised machine learning models, and a hybrid type combining the two. All these systems assign a score indicating the level of "bulliness" of online bullies. We demonstrate that the expert system outperforms the machine learning models. The hybrid classifier shows an even better performance.
机译:网络欺凌已成为在线环境中的主要问题,其后果不堪设想。但是,大多数技术研究都集中在通过识别骚扰性评论来检测网络欺凌,而不是通过检测出欺凌者来防止事件发生。在这项工作中,我们研究了自动检测YouTube上的欺凌用户的情况。我们比较了三种类型的自动检测:专家系统,监督式机器学习模型以及结合了这两种类型的混合类型。所有这些系统都分配一个分数,指示在线欺凌者的“欺负”程度。我们证明专家系统的性能优于机器学习模型。混合分类器显示出更好的性能。

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