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Twitter Sentiment Analysis for Security-Related Information Gathering

机译:安全相关信息收集的Twitter情绪分析

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Analysing public sentiment about future events, such as demonstration or parades, may provide valuable information while estimating the level of disruption and disorder during these events. Social media, such as Twitter or Facebook, provides views and opinions of users related to any public topics. Consequently, sentiment analysis of social media content may be of interest to different public sector organisations, especially in the security and law enforcement sector. In this paper we present a lexicon-based approach to sentiment analysis of Twitter content. The algorithm performs normalisation of the sentiment in an effort to provide intensity of the sentiment rather than positive/negative label. Following this, we evaluate an evidence-based combining function that supports the classification process in cases when positive and negative words co-occur in a tweet. Finally, we illustrate a case study examining the relation between sentiment of twitter posts related to English Defence League and the level of disorder during the EDL related events.
机译:分析关于未来事件的公众情绪,如演示或游行,可以提供有价值的信息,同时估计这些事件期间的中断和混乱程度。社交媒体,如推特或Facebook,提供与任何公共主题相关的用户的观点和意见。因此,社交媒体内容的情感分析可能对不同的公共部门组织有兴趣,特别是在安全和执法部门。在本文中,我们提出了一种基于词典的言论分析的基于词汇的方法。该算法在努力提供情绪的归一化,以提供言论的强度而不是正/负标签。在此之后,我们评估基于证据的组合函数,该函数支持分类过程,以便在推文中共同发生正面和负面单词。最后,我们说明了一个案例研究检查了与英国国防联盟相关的Twitter帖子情绪与EDL相关事件中无序水平的关系。

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