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Analysis and classification of Arabic crowd-sourced news reports: A case study of the Syrian crisis

机译:阿拉伯人群新闻报道的分析和分类:以叙利亚危机为例

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The prevalence of social media, in the whole world and the Arab region in particular, has fueled the active engagement and participation of large swaths of the Arabic society in current events. Social media has been used to rally public opinion, increase awareness, spread information/misinformation, and organize large events. Data analysis is necessary to drive decision making, advertisement, political campaigning, counter-intelligence, etc. The sheer volume of data and number of users calls for automated methods for analysis and classification of Arabic text. In this paper, the problem of analysis and classification of Arabic news reports was studied. Innovative methods, based on lexical analysis and machine learning, were employed to tame the complexity of the Arabic language. Different classification algorithms were compared and the classification accuracy results are promising. This research presents seminal steps toward specialized analysis of Arabic crowd-sourced data and social media.
机译:社交媒体的流行,尤其是在整个世界,尤其是在阿拉伯地区,推动了阿拉伯社会的广大民众积极参与并参与时事。社交媒体已被用来召集舆论,提高意识,传播信息/错误信息以及组织大型活动。数据分析对于推动决策,广告,政治运动,反情报等是必不可少的。庞大的数据量和用户数量要求自动化的方法来分析和分类阿拉伯文本。本文研究了阿拉伯新闻报道的分析和分类问题。基于词法分析和机器学习的创新方法被用来驯服阿拉伯语言的复杂性。比较了不同的分类算法,分类精度结果是有希望的。这项研究提出了对阿拉伯人群来源的数据和社交媒体进行专业分析的开创性步骤。

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