Transforming nursing with large language models: from concept to practice

Author:

Woo Brigitte1ORCID,Huynh Tom2ORCID,Tang Arthur2ORCID,Bui Nhat2,Nguyen Giang2,Tam Wilson1ORCID

Affiliation:

1. Alice Lee Centre for Nursing Studies, Yong Loo Lin School of Medicine, National University of Singapore , Singapore

2. School of Science, Engineering and Technology, RMIT University , 702 Nguyen Van Linh Blvd., District 7, Ho Chin Minh 756000, Ho Chin Minh City , Vietnam

Abstract

Abstract Large language models (LLMs) such as ChatGPT have emerged as potential game-changers in nursing, aiding in patient education, diagnostic assistance, treatment recommendations, and administrative task efficiency. While these advancements signal promising strides in healthcare, integrated LLMs are not without challenges, particularly artificial intelligence hallucination and data privacy concerns. Methodologies such as prompt engineering, temperature adjustments, model fine-tuning, and local deployment are proposed to refine the accuracy of LLMs and ensure data security. While LLMs offer transformative potential, it is imperative to acknowledge that they cannot substitute the intricate expertise of human professionals in the clinical field, advocating for a synergistic approach in patient care.

Publisher

Oxford University Press (OUP)

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