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Facilitating Self-Guided Mental Health Interventions Through Human-Language Model Interaction: A Case Study of Cognitive Restructuring

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arxiv 2310.15461 v2 pith:LX7MD3ZN submitted 2023-10-24 cs.HC cs.CL

classification cs.HCcs.CL
keywords healthinterventionsmentalcognitivemodelrestructuringself-guidedcase
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Self-guided mental health interventions, such as "do-it-yourself" tools to learn and practice coping strategies, show great promise to improve access to mental health care. However, these interventions are often cognitively demanding and emotionally triggering, creating accessibility barriers that limit their wide-scale implementation and adoption. In this paper, we study how human-language model interaction can support self-guided mental health interventions. We take cognitive restructuring, an evidence-based therapeutic technique to overcome negative thinking, as a case study. In an IRB-approved randomized field study on a large mental health website with 15,531 participants, we design and evaluate a system that uses language models to support people through various steps of cognitive restructuring. Our findings reveal that our system positively impacts emotional intensity for 67% of participants and helps 65% overcome negative thoughts. Although adolescents report relatively worse outcomes, we find that tailored interventions that simplify language model generations improve overall effectiveness and equity.

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  1. Evaluating an LLM-Powered Chatbot for Cognitive Restructuring: Insights from Mental Health Professionals

    cs.HC 2025-01 conditional novelty 6.0 of 10

    A GPT-4 chatbot followed cognitive restructuring steps for 19 users, but mental health experts flagged toxic positivity, advice-giving, and context misunderstandings.

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