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一个用于促进心理健康的全自动对话代理:一项采用混合方法的随机对照试验试点研究。

A fully automated conversational agent for promoting mental well-being: A pilot RCT using mixed methods.

作者信息

Ly Kien Hoa, Ly Ann-Marie, Andersson Gerhard

机构信息

Department of Behavioural Sciences and Learning, Linköping University, Linköping, Sweden.

Department of Psychology, Mittuniversitetet, Östersund, Sweden.

出版信息

Internet Interv. 2017 Oct 10;10:39-46. doi: 10.1016/j.invent.2017.10.002. eCollection 2017 Dec.

Abstract

Fully automated self-help interventions can serve as highly cost-effective mental health promotion tools for massive amounts of people. However, these interventions are often characterised by poor adherence. One way to address this problem is to mimic therapy support by a conversational agent. The objectives of this study were to assess the effectiveness and adherence of a smartphone app, delivering strategies used in positive psychology and CBT interventions via an automated chatbot (Shim) for a non-clinical population - as well as to explore participants' views and experiences of interacting with this chatbot. A total of 28 participants were randomized to either receive the chatbot intervention ( = 14) or to a wait-list control group ( = 14). Findings revealed that participants who adhered to the intervention ( = 13) showed significant interaction effects of group and time on psychological well-being (FS) and perceived stress (PSS-10) compared to the wait-list control group, with small to large between effect sizes (Cohen's range 0.14-1.06). Also, the participants showed high engagement during the 2-week long intervention, with an average open app ratio of 17.71 times for the whole period. This is higher compared to other studies on fully automated interventions claiming to be highly engaging, such as Woebot and the Panoply app. The qualitative data revealed sub-themes which, to our knowledge, have not been found previously, such as the moderating format of the chatbot. The results of this study, in particular the good adherence rate, validated the usefulness of replicating this study in the future with a larger sample size and an active control group. This is important, as the search for fully automated, yet highly engaging and effective digital self-help interventions for promoting mental health is crucial for the public health.

摘要

全自动自助干预可以作为面向大量人群的高性价比心理健康促进工具。然而,这些干预措施的特点往往是依从性较差。解决这个问题的一种方法是通过对话代理模拟治疗支持。本研究的目的是评估一款智能手机应用程序的有效性和依从性,该应用程序通过自动聊天机器人(Shim)为非临床人群提供积极心理学和认知行为疗法干预中使用的策略,同时探索参与者与该聊天机器人互动的观点和体验。共有28名参与者被随机分为接受聊天机器人干预组(n = 14)或等待列表对照组(n = 14)。研究结果显示,与等待列表对照组相比,坚持干预的参与者(n = 13)在心理健康(FS)和感知压力(PSS - 10)方面表现出组间和时间的显著交互作用,效应大小在小到中等之间(科恩d值范围为0.14 - 1.06)。此外,参与者在为期两周的干预期间参与度很高,整个期间平均打开应用程序的比例为17.71次。与其他声称具有高参与度的全自动干预研究(如Woebot和Panoply应用程序)相比,这一比例更高。定性数据揭示了一些据我们所知此前未被发现的子主题,例如聊天机器人的调节形式。本研究的结果,特别是良好的依从率,验证了未来以更大样本量和积极对照组重复本研究的有用性。这一点很重要,因为寻找促进心理健康的全自动、但高度吸引人且有效的数字自助干预措施对公共卫生至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/68e2/6084875/d0f820808227/gr1.jpg

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