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LINS: A general medical Q&A framework for enhancing the quality and credibility of LLM-generated responses

Title: LINS: A general medical Q&A framework for enhancing the quality and credibility of LLM-generated responses
Authors: Sheng Wang; Fangyuan Zhao; Dechao Bu; Yunwei Lu; Ming Gong; Hongjie Liu; Zhaohui Yang; Xiaoxi Zeng; Zhiyuan Yuan; Baoping Wan; Jingbo Sun; Yang Wu; Lianhe Zhao; Xirun Wan; Wei Huang; Tao Wang; Mengtong Xu; Jianjun Luo; Jingjia Liu; Jianjun Zheng; Wei Zhang; Kang Zhang; Hongjia Zhang; Shu Wang; RunSheng Chen; Yi Zhao
Source: Nature Communications, Vol 16, Iss 1, Pp 1-20 (2025)
Publisher Information: Nature Portfolio
Publication Year: 2025
Collection: Directory of Open Access Journals: DOAJ Articles
Subject Terms: Science
Description: Large language models can lighten the workload of clinicians and patients, yet their responses often include fabricated evidence, outdated knowledge, and insufficient medical specificity. We introduce a general retrieval-augmented question-answering framework that continuously gathers up-to-date, high-quality medical knowledge and generates evidence-traceable responses. Here we show that this approach significantly improves the evidence validity, medical expertise, and timeliness of large language model outputs, thereby enhancing their overall quality and credibility. Evaluation against 15,530 objective questions, together with two physician-curated clinical test sets covering evidence-based medical practice and medical order explanation, confirms the improvements. In blinded trials, resident physicians indicate meaningful assistance in 87.00% of evidence-based medical scenarios, and lay users find it helpful in 90.09% of medical order explanations. These findings demonstrate a practical route to trustworthy, general-purpose language assistants for clinical applications.
Document Type: article in journal/newspaper
Language: English
Relation: https://doi.org/10.1038/s41467-025-64142-2; https://doaj.org/toc/2041-1723; https://doaj.org/article/70ee36a8bb74448fbc5e611d8106b998
DOI: 10.1038/s41467-025-64142-2
Availability: https://doi.org/10.1038/s41467-025-64142-2; https://doaj.org/article/70ee36a8bb74448fbc5e611d8106b998
Accession Number: edsbas.42DCC0B0
Database: BASE