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On estimating depressive tendencies of Twitter users utilizing their tweet data

机译:关于使用推文数据估算Twitter用户的抑郁倾向

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摘要

In this paper, we investigate the effectiveness of the records of user's activities in Twitter, which is a popular microblogging site, for estimating his/her depressive tendency. We construct multiple regression model to estimate user's depressive tendency from the frequencies of words used by the user. We perform experiments to estimate participants' depressive tendencies using the constructed regression model. Our experimental results show that there exists medium positive correlation (correlation coefficient r ≃ 0.45) between the Zung's Self-rating Depression Scale, which is a popular measure for estimating depressive tendency, and estimated score obtained from the regression model.
机译:在本文中,我们调查了Twitter(这是一个受欢迎的微博网站)中用户活动记录的有效性,以估计其抑郁倾向。我们构建了多元回归模型,以根据用户使用的单词频率来估计用户的抑郁倾向。我们使用构建的回归模型进行实验以估计参与者的抑郁倾向。我们的实验结果表明,在Zung的自评抑郁量表和估计的得分之间存在中等正相关(相关系数r≃0.45),Zung的自评抑郁量表是估计抑郁倾向的常用方法。

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