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A System for Extracting Sentiment from Large-Scale Arabic Social Data

机译:从大规模阿拉伯社会数据中提取情感的系统

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摘要

Social media data in Arabic language is becoming more and more abundant. It is a consensus that valuable information lies in social media data. Mining this data and making the process easier are gaining momentum in the industries. This paper describes an enterprise system we developed for extracting sentiment from large volumes of social data in Arabic dialects. First, we give an overview of the Big Data system for information extraction from multilingual social data from a variety of sources. Then, we focus on the Arabic sentiment analysis capability that was built on top of the system including normalizing written Arabic dialects, building sentiment lexicons, sentiment classification, and performance evaluation. Lastly, we demonstrate the value of enriching sentiment results with user profiles in understanding sentiments of a specific user group.
机译:阿拉伯语言的社交媒体数据变得越来越丰富。人们一致认为有价值的信息存在于社交媒体数据中。挖掘这些数据并使过程更轻松正在行业中发展。本文介绍了我们开发的一种企业系统,用于从阿拉伯方言的大量社交数据中提取情感。首先,我们概述了用于从各种来源的多语言社交数据中提取信息的大数据系统。然后,我们将重点放在基于系统顶部的阿拉伯语情感分析功能上,其中包括规范化书面阿拉伯方言,构建情感词典,情感分类和性能评估。最后,我们展示了使用用户个人资料丰富情感结果在理解特定用户组情感方面的价值。

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