Natural language processing analysis of the psychosocial stressors of mental health disorders during the pandemic

María P. Raveau, Julián I. Goñi, José F. Rodríguez, Isidora Paiva-Mack, Fernanda Barriga, María P. Hermosilla, Claudio Fuentes-Bravo, Susana Eyheramendy
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Abstract

Over the past few years, the COVID-19 pandemic has exerted various impacts on the world, notably concerning mental health. Nevertheless, the precise influence of psychosocial stressors on this mental health crisis remains largely unexplored. In this study, we employ natural language processing to examine chat text from a mental health helpline. The data was obtained from a chat helpline called Safe Hour from the “It Gets Better” project in Chile. This dataset encompass 10,986 conversations between trained professional volunteers from the foundation and platform users from 2018 to 2020. Our analysis shows a significant increase in conversations covering issues of self-image and interpersonal relations, as well as a decrease in performance themes. Also, we observe that conversations involving themes like self-image and emotional crisis played a role in explaining both suicidal behavior and depressive symptoms. However, anxious symptoms can only be explained by emotional crisis themes. These findings shed light on the intricate connections between psychosocial stressors and various mental health aspects in the context of the COVID-19 pandemic.

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大流行病期间心理健康障碍的社会心理压力的自然语言处理分析
在过去的几年里,COVID-19 大流行病给世界带来了各种影响,尤其是在心理健康方面。然而,社会心理压力因素对这一心理健康危机的确切影响在很大程度上仍未得到探讨。在本研究中,我们采用自然语言处理技术来研究心理健康求助热线的聊天文本。这些数据来自智利 "It Gets Better "项目中名为 "Safe Hour "的聊天帮助热线。从 2018 年到 2020 年,该数据集包含来自基金会的训练有素的专业志愿者与平台用户之间的 10986 次对话。我们的分析表明,涉及自我形象和人际关系问题的对话大幅增加,而表现主题则有所减少。此外,我们还观察到,涉及自我形象和情感危机等主题的对话在解释自杀行为和抑郁症状方面都发挥了作用。然而,焦虑症状只能通过情感危机主题来解释。这些发现揭示了在 COVID-19 大流行的背景下,社会心理压力因素与心理健康各方面之间错综复杂的联系。
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