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A Survey of Offensive Language Detection for the Arabic Language

机译:阿拉伯语攻击性语言检测调查

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摘要

The use of offensive language in user-generated content is a serious problem that needs to be addressed with the latest technology. The field of Natural Language Processing (NLP) can support the automatic detection of offensive language. In this survey, we review previous NLP studies that cover Arabic offensive language detection. This survey investigates the state-of-the-art in offensive language detection for the Arabic language, providing a structured overview of previous approaches, including core techniques, tools, resources, methods, and main features used. This work also discusses the limitations and gaps of the previous studies. Findings from this survey emphasize the importance of investing further effort in detecting Arabic offensive language, including the development of benchmark resources and the invention of novel preprocessing and feature extraction techniques.
机译:在用户生成的内容中使用令人反感的语言是一个需要用最新技术解决的严重问题。 自然语言处理领域(NLP)可以支持自动检测进攻语言。 在本调查中,我们审查了以前的NLP研究,涵盖了阿拉伯语攻击性语言检测。 本调查调查了用于阿拉伯语的攻击性语言检测,提供了先前方法的结构化概述,包括所使用的核心技术,工具,资源,方法和主要功能。 这项工作还讨论了以前研究的限制和差距。 从本次调查中的调查结果强调了投资进一步努力检测阿拉伯攻击性语言的重要性,包括开发基准资源和新型预处理和特征提取技术的发明。

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