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The new eye of smart city: Novel citizen Sentiment Analysis in Twitter

机译:智慧城市的新眼球:Twitter中的新型公民情感分析

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Governments across the world are trying to move closer to their citizens for better smart city monitoring and governance. Twitter Sentiment Analysis is opening new opportunities to achieve it. In this paper, a methodological framework to collect, pre-process, analyse and map citizen sentiment from Twitter in helping the Governments monitor their citizens' moods is proposed based on the prior works. Multinomial Naïve Bayes classifier is used to build a sentiment classifier, which employs a variety of features including a specific microblogging feature - emoji. Our proposed sentiment model outperforms the top system in the task of Sentiment Analysis in Twitter in SemEval-2013 in terms of averaged F scores. The novel feature emoji has proved to be useful for Sentiment Analysis in Twitter data in this work. We also apply our model to real-world tweets and present how Government agencies can track the fluctuation of citizens' moods using mapping techniques.
机译:世界各地的政府都在努力与公民保持更紧密的联系,以更好地进行智慧城市监控和治理。 Twitter情绪分析为实现这一目标提供了新的机会。本文在先前的工作基础上,提出了一种方法框架,用于收集,预处理,分析和绘制来自Twitter的公民情绪,以帮助政府监控公民的情绪。多项式朴素贝叶斯分类器用于构建情感分类器,该分类器采用多种功能,包括特定的微博功能-表情符号。就平均F分数而言,我们提出的情感模型在2013年SemEval中的Twitter情感分析任务中的表现优于顶级系统。事实证明,新颖的表情符号功能可用于Twitter数据中的情感分析。我们还将模型应用到现实世界中的推文中,并介绍政府机构如何使用地图绘制技术跟踪公民情绪的波动。

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