首页> 外文会议>Proceedings of the 2016 IEEE/ACM International Conference on Advances in Social Networks Analysis and Mining >Sentiment-enhanced multidimensional analysis of online social networks: Perception of the mediterranean refugees crisis
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Sentiment-enhanced multidimensional analysis of online social networks: Perception of the mediterranean refugees crisis

机译:在线社交网络的情感增强多维分析:地中海难民危机的感知

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We propose an analytical framework able to investigate discussions about polarized topics in online social networks from many different angles. The framework supports the analysis of social networks along several dimensions: time, space and sentiment. We show that the proposed analytical framework and the methodology can be used to mine knowledge about the perception of complex social phenomena. We selected the refugee crisis discussions over Twitter as a case study. This difficult and controversial topic is an increasingly important issue for the EU. The raw stream of tweets is enriched with space information (user and mentioned locations), and sentiment (positive vs. negative) w.r.t. refugees. Our study shows differences in positive and negative sentiment in EU countries, in particular in UK, and by matching events, locations and perception, it underlines opinion dynamics and common prejudices regarding the refugees.
机译:我们提出了一个分析框架,该框架能够从许多不同角度调查有关在线社交网络中两极分化话题的讨论。该框架支持从多个维度对社交网络进行分析:时间,空间和情感。我们表明,提出的分析框架和方法可用于挖掘有关复杂社会现象感知的知识。我们选择了Twitter上有关难民危机的讨论作为案例研究。对于欧盟来说,这个困难而有争议的话题已成为越来越重要的问题。原始的推文流充斥着空间信息(用户和提到的位置)和情感(正面与负面)。难民。我们的研究表明,欧盟国家(尤其是英国)在积极情绪和消极情绪方面存在差异,并且通过匹配事件,地点和看法,它强调了有关难民的舆论动态和普遍偏见。

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