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Modeling Public Mood and Emotion: Twitter Sentiment and Socio-Economic Phenomena

机译:造型公共情绪与情感:推特情感与社会经济现象

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We perform a sentiment analysis of all tweets published on the microblogging platform Twitter in the second half of 2008. We use a psychometric instrument to extract six mood states (tension, depression, anger, vigor, fatigue, confusion) from the aggregated Twitter content and compute a six-dimensional mood vector for each day in the timeline. We compare our results to a record of popular events gathered from media and sources. We find that events in the social, political, cultural and economic sphere do have a significant, immediate and highly specific effect on the various dimensions of public mood. We speculate that large scale analyses of mood can provide a solid platform to model collective emotive trends in terms of their predictive value with regards to existing social as well as economic indicators.
机译:我们在2008年下半年对微博平台推特发布的所有推文的情感分析。我们使用精神测量仪器从聚合的Twitter内容中提取六种情绪状态(紧张,抑郁,愤怒,活力,疲劳,混淆)在时间轴中计算每天的六维情绪矢量。我们将我们的结果与媒体和来源收集的流行活动的记录进行比较。我们发现社会,政治,文化和经济领域的活动对公共情绪的各个方面有重要,即时和高度特定的影响。我们推测,情绪大规模分析可以提供一个坚实的平台,以便在其对现有社会和经济指标方面的预测价值方面模拟集体情感趋势。

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