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SMHD: A Large-Scale Resource for Exploring Online Language Usage for Multiple Mental Health Conditions

机译:SMHD:探索多种心理健康状况的在线语言用法的大规模资源

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Mental health is a significant and growing public health concern. As language usage can be leveraged to obtain crucial insights into mental health conditions, there is a need for large-scale. labeled, mental health-related datasets of users who have been diagnosed with one or more of such conditions. In this paper, we investigate the creation of high-precision patterns to identify self-reported diagnoses of nine different mental health conditions, and obtain high-quality labeled data without the need for manual labelling. We introduce the smhd (Self-reported Mental Health Diagnoses) dataset and make it available, smhd is a novel large dataset of social media posts from users with one or multiple menial health conditions along with matched control users. We examine distinctions in users' language, as measured by linguistic and psychological variables. We further explore text classification methods to identify individuals with mental conditions through their language.
机译:精神卫生是一个日益重要的公共卫生问题。由于可以利用语言来获得对心理健康状况的关键见解,因此需要大规模使用。标记过的,与心理健康相关的,被诊断患有一种或多种此类疾病的用户的数据集。在本文中,我们调查了高精度模式的创建,以识别九种不同心理健康状况的自我报告的诊断,并且无需手动标记即可获得高质量的标记数据。我们介绍了smhd(自我报告的心理健康诊断)数据集并使其可用,shmd是来自具有一个或多个心理健康状况的用户以及匹配的对照用户的社交媒体帖子的新型大型数据集。我们根据语言和心理变量来研究用户语言的差异。我们进一步探索文本分类方法,以通过他们的语言识别具有精神状况的人。

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