Prompt engineering: The next big skill in rheumatology research

被引:9
|
作者
Venerito, Vincenzo [1 ,2 ]
Lalwani, Devansh [3 ]
Del Vescovo, Sergio [1 ,2 ]
Iannone, Florenzo [1 ,2 ]
Gupta, Latika [4 ,5 ]
机构
[1] Univ Bari, Polyclin Hosp, Dept Precis & Regenerat Med, Bari, Italy
[2] Univ Bari, Polyclin Hosp, Ionian Area DiMePRe J, Bari, Italy
[3] Seth GS Med Coll & KEM Hosp, Mumbai, India
[4] Royal Wolverhampton Trust, Dept Rheumatol, Wolverhampton WV10 0QP, England
[5] Univ Manchester, Ctr Musculoskeletal Res, Sch Biol Sci, Div Musculoskeletal & Dermatol Sci, Manchester, England
关键词
large language models; medical research; prompt engineering;
D O I
10.1111/1756-185X.15157
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Large language models (LLMs) like GPT-4 and Claude are catalyzing transformation across medical research including rheumatology. This review examines their applications, highlighting the pivotal role of prompt engineering in effectively guiding LLMs. Key aspects explored include literature synthesis, data analysis, manuscript drafting, coding assistance, privacy considerations, and generative artificial intelligence integrations. While LLMs accelerate workflows, reliance without apt prompting jeopardizes accuracy. By methodically constructing prompts and gauging model outputs, researchers can maximize relevance and utility. Locally run open-source models also offer data privacy protections. As LLMs permeate rheumatology research, developing expertise in strategic prompting and assessing model limitations is critical. With proper oversight, LLMs markedly boost scholarly productivity.
引用
收藏
页数:6
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