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Artificial Intelligence Chatbot for Depression: Descriptive Study of Usage

机译:用于抑郁症的人工智能聊天:使用描述性研究

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Background: Chatbots could be a scalable solution that provides an interactive means of engaging users in behavioral health interventions driven by artificial intelligence. Although some chatbots have shown promising early efficacy results, there is limited information about how people use these chatbots. Understanding the usage patterns of chatbots for depression represents a crucial step toward improving chatbot design and providing information about the strengths and limitations of the chatbots. Objective: This study aims to understand how users engage and are redirected through a chatbot for depression (Tess) to provide design recommendations. Methods: Interactions of 354 users with the Tess depression modules were analyzed to understand chatbot usage across and within modules. Descriptive statistics were used to analyze participant flow through each depression module, including characters per message, completion rate, and time spent per module. Slide plots were also used to analyze the flow across and within modules. Results: Users sent a total of 6220 messages, with a total of 86,298 characters, and, on average, they engaged with Tess depression modules for 46 days. There was large heterogeneity in user engagement across different modules, which appeared to be affected by the length, complexity, content, and style of questions within the modules and the routing between modules. Conclusions: Overall, participants engaged with Tess; however, there was a heterogeneous usage pattern because of varying module designs. Major implications for future chatbot design and evaluation are discussed in the paper.
机译:背景:Chatbots可以是可扩展的解决方案,可提供由人工智能驱动的行为健康干预措施的交互式手段。虽然有些聊天表明有前景的早期疗效结果,但有关人们如何使用这些聊天的信息有限。了解抑郁症的使用模式对提高Chatbot设计并提供有关聊天强度和局限性的信息,这是一个关键步骤。目的:这项研究旨在了解用户如何参与,并通过聊天(TESS)的Chatbot重定向,以提供设计建议。方法:分析了354个用户与TESS凹陷模块的相互作用,以了解跨越模块内的Chatbot使用情况。描述性统计数据用于分析参与者流过每个凹陷模块,包括每条消息的字符,完成速率和每模块所花费的时间。滑动图也用于分析模块的流动。结果:用户共发送了6220条消息,共有86,298个字符,平均而言,它们与苔丝凹陷模块进行46天。在不同模块的用户参与中存在大的异质性,这似乎受到模块内的长度,复杂性,内容和样式的影响和模块之间的路由。结论:总体而言,参与者与苔丝订婚;然而,由于不同的模块设计,存在异构的使用模式。本文讨论了对未来Chatbot设计和评估的重大影响。

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