Clinical and Surgical Applications of Large Language Models: A Systematic Review
Клиническое и хирургическое применение больших языковых моделей: систематический обзор
2024-05-22
SCID: 54.1/uyvukxtw
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clinical applicationshealthcare deliverylarge language modelssurgical applicationssystematic review
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Abstract (AI)
Background: Large language models (LLMs) represent a recent advancement in artificial intelligence with medical applications across various healthcare domains. The objective of this review is to highlight how LLMs can be utilized by clinicians and surgeons in their everyday practice. Methods: A systematic review was conducted following the Preferred Reporting Items for Systematic Reviews and Meta-Analyses guidelines. Six databases were searched to identify relevant articles. Eligibility criteria emphasized articles focused primarily on clinical and surgical applications of LLMs. Results: The literature search yielded 333 results, with 34 meeting eligibility criteria. All articles were from 2023. There were 14 original research articles, four letters, one interview, and 15 review articles. These articles covered a wide variety of medical specialties, including various surgical subspecialties. Conclusions: LLMs have the potential to enhance healthcare delivery. In clinical settings, LLMs can assist in diagnosis, treatment guidance, patient triage, physician knowledge augmentation, and administrative tasks. In surgical settings, LLMs can assist surgeons with documentation, surgical planning, and intraoperative guidance. However, addressing their limitations and concerns, particularly those related to accuracy and biases, is crucial. LLMs should be viewed as tools to complement, not replace, the expertise of healthcare professionals.
Key Findings
1
A systematic review of six databases identified 333 records, of which 34 articles met eligibility criteria; all were published in 2023.
2
Accuracy and bias remain critical limitations, so large language models should complement rather than replace healthcare professionals’ expertise.
3
In clinical practice, large language models may support diagnosis, treatment guidance, patient triage, physician knowledge augmentation, and administrative tasks.
4
In surgical practice, large language models may assist with documentation, surgical planning, and intraoperative guidance.
5
The included literature comprised 14 original research articles, four letters, one interview, and 15 review articles spanning diverse medical and surgical specialties.
Research Object
Large language models in clinical and surgical healthcare practice
Research Subject
Their applications, capabilities, and limitations for diagnosis, treatment guidance, triage, knowledge augmentation, administrative work, documentation, surgical planning, and intraoperative guidance
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2024-05-22
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