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Topic Model for Identifying Suicidal Ideation in Chinese Microblog

机译:中国微博中自杀意念的主题模型

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Suicide is one of major public health problems worldwide. Traditionally, suicidal ideation is assessed by surveys or interviews, which lacks of a real-time assessment of personal mental state. Online social networks, with large amount of user-generated data, offer opportunities to gain insights of suicide assessment and prevention. In this paper, we explore potentiality to identify and monitor suicide expressed in microblog on social networks. First, we identify users who have committed suicide and collect millions of microblogs from social networks. Second, we build suicide psychological lexicon by psychological standards and word embedding technique. Third, by leveraging both language styles and online behaviors, we employ Topic Model and other machine learning algorithms to identify suicidal ideation. Our approach achieves the best results on topic-500, yielding F_1-measure of 80.0%, Precision of 87.1%, Recall of 73.9%, and Accuracy of 93.2%. Furthermore, a prototype system for monitoring suicidal ideation on several social networks is deployed.
机译:自杀是全球主要的公共卫生问题之一。传统上,自杀意念是通过调查或访谈来评估的,而缺乏对个人心理状态的实时评估。具有大量用户生成数据的在线社交网络为了解自杀评估和预防提供了机会。在本文中,我们探索了识别和监控社交网络微博中表达的自杀的潜力。首先,我们确定自杀的用户,并从社交网络收集数百万条微博。其次,我们根据心理标准和词嵌入技术建立了自杀心理词典。第三,通过同时利用语言风格和在线行为,我们采用主题模型和其他机器学习算法来识别自杀意念。我们的方法在topic-500上获得了最佳结果,F_1测度为80.0%,精度为87.1%,召回率为73.9%,准确度为93.2%。此外,部署了用于监视多个社交网络上的自杀意念的原型系统。

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