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从心理语言学角度探索ChatGPT在医疗互动中的沟通行为

Exploring ChatGPT's communication behaviour in healthcare interactions: A psycholinguistic perspective.

作者信息

Biassoni Federica, Gnerre Martina

机构信息

Department of Psychology, Catholic University of the Sacred Heart, Largo Gemelli 1, Milan, Italy; Research Center in Communication Psychology, Catholic University of the Sacred Heart, Milan 20123, Italy.

Department of Psychology, Catholic University of the Sacred Heart, Largo Gemelli 1, Milan, Italy.

出版信息

Patient Educ Couns. 2025 May;134:108663. doi: 10.1016/j.pec.2025.108663. Epub 2025 Jan 14.

Abstract

OBJECTIVES

Conversational artificial agents such as ChatGPT are commonly used by people seeking healthcare information. This study investigates whether ChatGPT exhibits distinct communicative behaviors in healthcare settings based on the nature of the disorder (medical or psychological) and the user communication style (neutral vs. expressing concern).

METHOD

Queries were conducted with ChatGPT to gather information on the diagnosis and treatment of two conditions (arthritis and anxiety) using different styles (neutral vs. expressing concern). ChatGPT's responses were analyzed using Linguistic Inquiry and Word Count (LIWC) to identify linguistic markers of the agent's adjustment to different inquiries and interaction modes. Statistical analyses, including repeated measures ANOVA and k-means cluster analysis, identified patterns in ChatGPT's responses.

RESULTS

ChatGPT used more engaging language in treatment contexts and psychological inquiries. It exhibited more analytical thinking in neutral contexts while demonstrating higher levels of empathy in psychological conditions and when the user expressed concern. Wellness-related language was more prevalent in psychological and treatment contexts, whereas illness-related language was more common in diagnostic interactions for physical conditions. Cluster analysis revealed two distinct patterns: high empathy and engagement in psychological/expressing-concern scenarios, and lower empathy and engagement in neutral/physical disease contexts.

CONCLUSIONS

These findings suggest that ChatGPT's responses vary according to disorder type and interaction context, potentially improving its effectiveness in patient engagement.

PRACTICE IMPLICATIONS

Through context and user-concern language adaptation, ChatGPT can enhance patient engagement.

摘要

目的

诸如ChatGPT之类的对话式人工智能代理被寻求医疗保健信息的人们广泛使用。本研究调查ChatGPT在医疗保健环境中是否会根据疾病的性质(医学或心理)以及用户的沟通方式(中立与表达关切)表现出不同的交流行为。

方法

使用不同方式(中立与表达关切)向ChatGPT进行查询,以收集有关两种疾病(关节炎和焦虑症)的诊断和治疗信息。使用语言查询与字数统计工具(LIWC)分析ChatGPT的回复,以识别该代理对不同查询和交互模式进行调整的语言标记。包括重复测量方差分析和k均值聚类分析在内的统计分析确定了ChatGPT回复中的模式。

结果

ChatGPT在治疗背景和心理询问中使用了更具吸引力的语言。它在中立背景下表现出更多的分析性思维,而在心理状况下以及用户表达关切时表现出更高水平的同理心。与健康相关的语言在心理和治疗背景中更为普遍,而与疾病相关的语言在身体状况的诊断交互中更为常见。聚类分析揭示了两种不同的模式:在心理/表达关切场景中具有高同理心和参与度,而在中立/身体疾病背景中则具有较低的同理心和参与度。

结论

这些发现表明,ChatGPT的回复会根据疾病类型和交互背景而有所不同,这可能会提高其在患者参与方面的有效性。

实践意义

通过适应背景和用户关切语言,ChatGPT可以增强患者参与度。

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