Rethinking the Alignment of Psychotherapy Dialogue Generation with Motivational Interviewing Strategies

Open Access
Authors
  • Xin Sun
  • Xiao Tang
  • Abdallah El Ali
  • Zhuying Li
Publication date 2025
Host editors
  • Owen Rambow
  • Leo Wanner
  • Marianna Apidianaki
  • Hend Al-Khalifa
  • Barbara Di Eugenio
  • Steven Schockaert
Book title The 31st International Conference on Computational Linguistics : proceedings of the main conference
Book subtitle COLING 2025 : January 19-24, 2025
ISBN (electronic)
  • 9798891761964
Event 31st International Conference on Computational Linguistics, COLING 2025
Pages (from-to) 1983-2002
Number of pages 20
Publisher Stroudsburg, PA: Association for Computational Linguistics
Organisations
  • Faculty of Social and Behavioural Sciences (FMG) - Psychology Research Institute (PsyRes)
Abstract

Recent advancements in large language models (LLMs) have shown promise in generating psychotherapeutic dialogues, particularly in the context of motivational interviewing (MI). However, the inherent lack of transparency in LLM outputs presents significant challenges given the sensitive nature of psychotherapy. Applying MI strategies, a set of MI skills, to generate more controllable therapeutic-adherent conversations with explainability provides a possible solution. In this work, we explore the alignment of LLMs with MI strategies by first prompting the LLMs to predict the appropriate strategies as reasoning and then utilizing these strategies to guide the subsequent dialogue generation. We seek to investigate whether such alignment leads to more controllable and explainable generations. Multiple experiments including automatic and human evaluations are conducted to validate the effectiveness of MI strategies in aligning psychotherapy dialogue generation. Our findings demonstrate the potential of LLMs in producing strategically aligned dialogues and suggest directions for practical applications in psychotherapeutic settings.

Document type Conference contribution
Language English
Published at https://aclanthology.org/2025.coling-main.136/
Other links https://www.scopus.com/pages/publications/85218487503
Downloads
2025.coling-main.136 (Final published version)
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