在Twitter上自动识别个人生活事件

Thomas Dickinson, Miriam Fernández, Lisa A. Thomas, P. Mulholland, P. Briggs, Harith Alani
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引用次数: 3

摘要

新的社交媒体导致了个人数字数据的爆炸式增长,这些数据既包括个人选择的自我表达,也包括其他第三方提供的自我反映。由此产生的数字人格(DP)数据是复杂的,对于许多用户来说,很容易迷失在数字数据的泥潭中。本文研究了Twitter中个人生活事件的自动检测。心理学研究考虑了六个相关的生活事件,包括:开始上学;第一份全职工作;坠入爱河;婚姻;生儿育女,父母去世。我们定义了各种特征(用户、内容、语义和交互)来捕捉这些生活事件的特征,并展示了几种分类方法的结果,以自动识别Twitter中的这些事件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic Identification of Personal Life Events in Twitter
New social media has led to an explosion in personal digital data that encompasses both those expressions of self chosen by the individual as well as reflections of self provided by other, third parties. The resulting Digital Personhood (DP) data is complex and for many users it is too easy to become lost in the mire of digital data. This paper studies the automatic detection of personal life events in Twitter. Six relevant life events are considered from psychological research including: beginning school; first full time job; falling in love; marriage; having children and parent's death. We define a variety of features (user, content, semantic and interaction) to capture the characteristics of those life events and present the results of several classification methods to automatically identify these events in Twitter.
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