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Automation of understanding textual contents in social networks

机译:在社交网络中自动理解文本内容

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Today, the number of users of social network increases and a lot of users share opinions on different aspects of life every day. So the rate of colloquial written text increases dramatically as a medium of expressing ideas especially across the WWW. Therefore, social networks are rich sources of data for opinion mining and sentiment analysis. Arab colloquial dialects are languages that people used to communicate with each other in social networks. Recently, there is a massive amount of Arab colloquial data on Social networks. By increasing the available data, the needing for processing this data and using it is increased. However, most available tools and resources (morphological analyzers, disambiguation systems, annotated data, and parallel corpora) are for Modern Standard Arabic (MSA). Therefore, the need for the automatic transformation from Arab colloquial dialects to Modern Standard Arabic becomes urgent to use Modern Standard Arabic tools and resources for Arab colloquial dialects. The most famous colloquial is Egyptian colloquial dialect, which is considered the most widely used and understood dialect throughout the Arab world. Consequently, the focus of the proposed system is the Egyptian colloquial dialect to prove our approach.
机译:如今,社交网络的用户数量不断增加,并且每天都有很多用户就生活的各个方面分享意见。因此,作为一种表达思想的媒介,口语书面文字的比率急剧增加,尤其是在整个WWW上。因此,社交网络是用于观点挖掘和情感分析的丰富数据源。阿拉伯口语是人们用来在社交网络中相互交流的语言。最近,在社交网络上有大量的阿拉伯口语数据。通过增加可用数据,增加了处理和使用该数据的需求。但是,大多数可用的工具和资源(形态分析器,消歧系统,带注释的数据和并行语料库)都是用于现代标准阿拉伯语(MSA)的。因此,迫切需要从阿拉伯语方言自动转换为现代标准阿拉伯语,以将现代标准阿拉伯语工具和资源用于阿拉伯方言变得迫在眉睫。最著名的口语是埃及口语,它被认为是阿拉伯世界使用最广泛,最易理解的方言。因此,拟议系统的重点是埃及口语方言,以证明我们的方法。

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