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ARHNet - Leveraging Community Interaction For Detection Of Religious Hate Speech In Arabic

机译:ARHNet-利用社区互动来检测阿拉伯语中的宗教仇恨言论

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The rapid widespread of social media has led to some undesirable consequences like the rapid increase of hateful content and offensive language. Religious Hate Speech, in particular, often leads to unrest and sometimes aggravates to violence against people on the basis of their religious affiliations. The richness of the Arabic morphology and the limited available resources makes this task especially challenging. The current state-of-the-art approaches to detect hate speech in Arabic rely entirely on textual (lexical and semantic) cues. Our proposed methodology contends that leveraging Community-Interaction can better help us profile hate speech content on social media. Our proposed ARHNet (Arabic Religious Hate Speech Net) model incorporates both Arabic Word Embeddings and Social Network Graphs for the detection of religious hate speech.
机译:社交媒体的迅速普及导致了一些不良后果,例如仇恨内容和令人反感的语言的迅速增加。尤其是宗教仇恨言论,通常会导致动荡,有时甚至会因其宗教信仰而加剧针对他人的暴力行为。阿拉伯语形态的丰富性和有限的可用资源使这项任务特别具有挑战性。当前检测阿拉伯语仇恨言论的最新方法完全依赖于文本(词汇和语义)提示。我们提出的方法论认为,利用社区互动可以更好地帮助我们在社交媒体上描述仇恨言论内容。我们提出的ARHNet(阿拉伯宗教仇恨语音网)模型结合了阿拉伯文字嵌入和社交网络图,用于检测宗教仇恨语音。

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