"You tell me": A Dataset of GPT-4-Based Behaviour Change Support Conversations

Selina Meyer, David Elsweiler
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Abstract

Conversational agents are increasingly used to address emotional needs on top of information needs. One use case of increasing interest are counselling-style mental health and behaviour change interventions, with large language model (LLM)-based approaches becoming more popular. Research in this context so far has been largely system-focused, foregoing the aspect of user behaviour and the impact this can have on LLM-generated texts. To address this issue, we share a dataset containing text-based user interactions related to behaviour change with two GPT-4-based conversational agents collected in a preregistered user study. This dataset includes conversation data, user language analysis, perception measures, and user feedback for LLM-generated turns, and can offer valuable insights to inform the design of such systems based on real interactions.
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"你告诉我基于 GPT-4 的行为改变支持对话数据集
对话代理越来越多地用于满足信息需求之外的情感需求。其中,咨询式心理健康和行为改变干预越来越受到关注,基于大型语言模型(LLM)的方法也越来越流行。迄今为止,这方面的研究主要以系统为中心,忽略了用户行为及其对 LLM 生成文本的影响。为了解决这个问题,我们分享了一个数据集,其中包含与行为改变相关的基于文本的用户交互,以及在一项预先注册的用户研究中收集的两个基于 GPT-4 的对话代理。该数据集包括对话数据、用户语言分析、感知测量和用户对 LLM 生成的转折的反馈,可以为基于真实交互的此类系统的设计提供有价值的见解。
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