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Large Language Models for Individualized Psychoeducational Tools for Psychosis: A Cross-Sectional Study
Musa Yilanli1,2, Ian McKay1,2, Daniel I Jackson3
1Nationwide Children's Hospital, Columbus, Ohio, USA.
Early Intervention in Psychiatry
|July 30, 2026
Summary
Large language models like GPT-4 show potential for psychosis psychoeducation, offering accurate and clear information. However, cautious use is advised due to reading complexity and inclusivity concerns, requiring clinician guidance for optimal patient support.
Area of Science:
- Artificial Intelligence in Mental Health
- Clinical Psychology
- Psychiatric Care
Background:
- Psychoeducation is crucial for patients with psychosis, their caregivers, and relatives.
- Existing resources may not always meet the diverse needs of individuals seeking information about psychosis.
- Large language models (LLMs) present a potential new avenue for delivering psychoeducational content.
Purpose of the Study:
- To evaluate the quality of GPT-4 generated responses to common psychosis-related psychoeducational questions.
- Assess responses based on accuracy, clarity, inclusivity, completeness, and clinical utility.
- Determine the potential role of LLMs in supporting psychosis psychoeducation.
Main Methods:
- A qualitative evaluation design was used.
- GPT-4 generated responses to 20 psychosis-related questions developed by clinicians.
- Two experts independently assessed responses using a six-domain rubric, resolving discrepancies through consensus.
Main Results:
- GPT-4 responses were generally accurate (2.88/3), clear (2.93/3), complete (0.93/1), and clinically useful (4.35/5).
- Inclusivity scores were lower (2.30/3), and responses exhibited high reading complexity (Flesch-Kincaid Grade Level 15.59).
- Some responses lacked nuance for complex clinical scenarios.
Conclusions:
- GPT-4 shows a limited adjunctive role in psychosis psychoeducation within clinician-guided settings.
- Readability and clinical relevance were strengths, but complexity and inclusivity issues pose accessibility challenges.
- Further research is necessary before widespread clinical integration due to accuracy, safety, and implementation concerns.
