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Combining Artificial Users and Psychotherapist Assessment to Evaluate Large Language Model-based Mental Health Chatbots

Kuhlmeier, Florian Onur ORCID iD icon 1; Hanschmann, Leon; Rabe, Melina; Luettke, Stefan; Brakemeier, Eva-Lotta; Maedche, Alexander ORCID iD icon 1
1 Institut für Wirtschaftsinformatik (WIN), Karlsruher Institut für Technologie (KIT)

Abstract:

Large Language Models (LLMs) promise to overcome limitations of rule-based mental health chatbots through more natural conversations. However, evaluating LLM-based mental health chatbots presents a significant challenge: Their probabilistic nature requires comprehensive testing to ensure therapeutic quality, yet conducting such evaluations with people with depression would impose an additional burden on vulnerable people and risk exposing them to potentially harmful content. Our paper presents an evaluation approach for LLM-based mental health chatbots that combines dialogue generation with artificial users and dialogue evaluation by psychotherapists. We developed artificial users based on patient vignettes, systematically varying characteristics such as depression severity, personality traits, and attitudes toward chatbots, and let them interact with a LLM-based behavioral activation chatbot. Ten psychotherapists evaluated 48 randomly selected dialogues using standardized rating scales to assess the quality of behavioral activation and its therapeutic capabilities. We found that while artificial users showed moderate authenticity, they enabled comprehensive testing across different users. ... mehr


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Originalveröffentlichung
DOI: 10.48550/arXiv.2503.21540
Zugehörige Institution(en) am KIT Institut für Wirtschaftsinformatik (WIN)
Institut für Wirtschaftsinformatik und Marketing (IISM)
Publikationstyp Forschungsbericht/Preprint
Publikationsjahr 2025
Sprache Englisch
Identifikator KITopen-ID: 1000182509
Verlag arxiv
Schlagwörter Human-Computer Interaction (cs.HC)
Nachgewiesen in arXiv
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