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Inferring Perceived Demographics from User Emotional Tone and User-Environment Emotional Contrast

机译:从用户情绪音调和用户环境情绪对比推断人口统计特征

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We examine communications in a social network to study user emotional contrast - the propensity of users to express different emotions than those expressed by their neighbors. Our analysis is based on a large Twitter dataset, consisting of the tweets of 123,513 users from the USA and Canada. Focusing on Ekman's basic emotions, we analyze differences between the emotional tone expressed by these users and their neighbors of different types, and correlate these differences with perceived user demographics. We demonstrate that many perceived demographic traits correlate with the emotional contrast between users and their neighbors. Unlike other approaches on inferring user attributes that rely solely on user communications, we explore the network structure and show that it is possible to accurately predict a range of perceived demographic traits based solely on the emotions emanating from users and their neighbors.
机译:我们研究了社交网络中的交流,以研究用户的情感对比,即用户表达与邻居所表达的情感不同的倾向。我们的分析基于一个大型Twitter数据集,其中包括来自美国和加拿大的123,513位用户的推文。着眼于Ekman的基本情感,我们分析了这些用户与不同类型的邻居所表达的情绪调之间的差异,并将这些差异与感知到的用户人口统计相关联。我们证明,许多可感知的人口统计特征与用户及其邻居之间的情感对比相关。与仅依靠用户通信来推断用户属性的其他方法不同,我们探索了网络结构,并表明有可能仅根据用户及其邻居的情绪来准确预测一系列感知到的人口统计特征。

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