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Psychiatric Profiles of eHealth Users Evaluated Using Data Mining Techniques: Cohort Study

机译:使用数据挖掘技术评估电子矿业技术的精神审商:队列研究

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Background New technologies are changing access to medical records and the relationship between physicians and patients. Professionals can now use e-mental health tools to provide prompt and personalized responses to patients with mental illness. However, there is a lack of knowledge about the digital phenotypes of patients who use e-mental health apps. Objective This study aimed to reveal the profiles of users of a mental health app through machine learning techniques. Methods We applied a nonparametric model, the Sparse Poisson Factorization Model, to discover latent features in the response patterns of 2254 psychiatric outpatients to a short self-assessment on general health. The assessment was completed through a mental health app after the first login. Results The results showed the following four different profiles of patients: (1) all patients had feelings of worthlessness, aggressiveness, and suicidal ideas; (2) one in four reported low energy and difficulties to cope with problems; (3) less than a quarter described depressive symptoms with extremely high scores in suicidal thoughts and aggressiveness; and (4) a small number, possibly with the most severe conditions, reported a combination of all these features. Conclusions User profiles did not overlap with clinician-made diagnoses. Since each profile seems to be associated with a different level of severity, the profiles could be useful for the prediction of behavioral risks among users of e-mental health apps.
机译:背景技术新技术正在改变对医疗记录的访问以及医生与患者之间的关系。专业人士现在可以使用精神卫生工具为精神疾病患者提供迅速和个性化的反应。然而,缺乏关于使用电子心理健康应用程序的患者的数字表型的知识。目的本研究旨在通过机器学习技术揭示心理健康应用程序的用户的简档。方法我们应用了非参数模型,稀疏泊​​松分子化模型,发现响应模式的潜在特征在2254年精神病院的响应模式中对一般健康的简短自我评估。在第一次登录后,通过心理健康应用程序完成评估。结果结果表明以下四种不同患者曲线:(1)所有患者都有无价值,侵略性和自杀思想的感觉; (2)四分之一报告的低能量和困难应对问题; (3)少于四分之一的抑郁症状,在自杀思想和侵略性方面具有极高的分数; (4)少数,可能具有最严重的条件,报告了所有这些特征的组合。结论用户配置文件与临床医生制作的诊断没有重叠。由于每个配置文件似乎与不同程度的严重程度相关联,因此配置文件可用于预测电子心理健康应用程序的用户之间的行为风险。

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