Large Language Models in Mental Health Care: a Scoping Review
Yining Hua, Fenglin Liu, Kailai Yang, Zehan Li, Hongbin Na, Yi-han Sheu, Peilin Zhou, Lauren V. Moran, Sophia Ananiadou, David A. Clifton, Andrew Beam, John Torous

TL;DR
This review comprehensively analyzes the use of Large Language Models in mental health care, highlighting their applications, challenges, and future potential, emphasizing the need for ethical, reliable, and effective deployment.
Contribution
It provides a systematic review of recent LLM applications in mental health, identifying key challenges and outlining future research directions for clinical and ethical integration.
Findings
LLMs are used in diagnostics, therapy, and patient engagement.
Challenges include data reliability, ethical concerns, and evaluation methods.
LLMs show promise but require robust datasets and ethical guidelines.
Abstract
Objectieve:This review aims to deliver a comprehensive analysis of Large Language Models (LLMs) utilization in mental health care, evaluating their effectiveness, identifying challenges, and exploring their potential for future application. Materials and Methods: A systematic search was performed across multiple databases including PubMed, Web of Science, Google Scholar, arXiv, medRxiv, and PsyArXiv in November 2023. The review includes all types of original research, regardless of peer-review status, published or disseminated between October 1, 2019, and December 2, 2023. Studies were included without language restrictions if they employed LLMs developed after T5 and directly investigated research questions within mental health care settings. Results: Out of an initial 313 articles, 34 were selected based on their relevance to LLMs applications in mental health care and the rigor of…
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Taxonomy
TopicsMental Health via Writing
MethodsRefunds@Expedia|||How do I get a full refund from Expedia? · Attention Is All You Need · Gated Linear Unit · Dense Connections · Byte Pair Encoding · Softmax · Linear Layer · SentencePiece · Inverse Square Root Schedule · Attention Dropout
