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Quantitative Study of Music Listening Behavior in a Social and Affective Context

机译:社会情感情境下音乐听力行为的定量研究

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A scientific understanding of emotion experience requires information on the contexts in which the emotion is induced. Moreover, as one of the primary functions of music is to regulate the listener's mood, the individual's short-term music preference may reveal the emotional state of the individual. In light of these observations, this paper presents the first scientific study that exploits the online repository of social data to investigate the connections between a blogger's emotional state, user context manifested in the blog articles, and the content of the music titles the blogger attached to the post. A number of computational models are developed to evaluate the accuracy of different content or context cues in predicting emotional state, using 40,000 pieces of music listening records collected from the social blogging website LiveJournal. Our study shows that it is feasible to computationally model the latent structure underlying music listening and mood regulation. The average area under the receiver operating characteristic curve (AUC) for the content-based and context-based models attains 0.5462 and 0.6851, respectively. The association among user mood, music emotion, and individual's personality is also identified.
机译:对情感体验的科学理解需要有关引发情感的上下文的信息。此外,由于音乐的主要功能之一是调节听众的情绪,因此个人的短期音乐偏好可能会揭示其情感状态。根据这些观察,本文提出了第一项科学研究,该研究利用社交数据的在线存储库来调查博客作者的情绪状态,博客文章中显示的用户上下文以及博客作者所附加的音乐标题之间的联系。该职位。利用从社交博客网站LiveJournal收集的40,000条音乐收听记录,开发了许多计算模型来评估不同内容或上下文提示在预测情绪状态方面的准确性。我们的研究表明,对潜在的音乐聆听和情绪调节潜在结构进行计算建模是可行的。基于内容的模型和基于上下文的模型的接收器工作特性曲线(AUC)下的平均面积分别达到0.5462和0.6851。还确定了用户情绪,音乐情绪和个人个性之间的关联。

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