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评估 ChatGPT 在临床药学中的性能:ChatGPT 与临床药师的对比研究。

Evaluating the performance of ChatGPT in clinical pharmacy: A comparative study of ChatGPT and clinical pharmacists.

机构信息

Department of Pharmacy, Peking University Third Hospital, Beijing, China.

Department of Pharmaceutical Management and Clinical Pharmacy, College of Pharmacy, Peking University, Beijing, China.

出版信息

Br J Clin Pharmacol. 2024 Jan;90(1):232-238. doi: 10.1111/bcp.15896. Epub 2023 Sep 13.

Abstract

AIMS

To evaluate the performance of chat generative pretrained transformer (ChatGPT) in key domains of clinical pharmacy practice, including prescription review, patient medication education, adverse drug reaction (ADR) recognition, ADR causality assessment and drug counselling.

METHODS

Questions and clinical pharmacist's answers were collected from real clinical cases and clinical pharmacist competency assessment. ChatGPT's responses were generated by inputting the same question into the 'New Chat' box of ChatGPT Mar 23 Version. Five licensed clinical pharmacists independently rated these answers on a scale of 0 (Completely incorrect) to 10 (Completely correct). The mean scores of ChatGPT and clinical pharmacists were compared using a paired 2-tailed Student's t-test. The text content of the answers was also descriptively summarized together.

RESULTS

The quantitative results indicated that ChatGPT was excellent in drug counselling (ChatGPT: 8.77 vs. clinical pharmacist: 9.50, P = .0791) and weak in prescription review (5.23 vs. 9.90, P = .0089), patient medication education (6.20 vs. 9.07, P = .0032), ADR recognition (5.07 vs. 9.70, P = .0483) and ADR causality assessment (4.03 vs. 9.73, P = .023). The capabilities and limitations of ChatGPT in clinical pharmacy practice were summarized based on the completeness and accuracy of the answers. ChatGPT revealed robust retrieval, information integration and dialogue capabilities. It lacked medicine-specific datasets as well as the ability for handling advanced reasoning and complex instructions.

CONCLUSIONS

While ChatGPT holds promise in clinical pharmacy practice as a supplementary tool, the ability of ChatGPT to handle complex problems needs further improvement and refinement.

摘要

目的

评估聊天生成预训练转换器(ChatGPT)在临床药学实践的主要领域中的表现,包括处方审核、患者用药教育、药物不良反应(ADR)识别、ADR 因果关系评估和药物咨询。

方法

从真实临床案例和临床药师能力评估中收集问题和临床药师的答案。将相同的问题输入 ChatGPT Mar 23 版本的“新聊天”框,生成 ChatGPT 的回答。五位持照临床药师对这些回答进行 0(完全不正确)到 10(完全正确)的评分。使用配对双侧学生 t 检验比较 ChatGPT 和临床药师的平均得分。还对回答的文本内容进行了描述性总结。

结果

定量结果表明,ChatGPT 在药物咨询方面表现出色(ChatGPT:8.77 分与临床药师:9.50 分,P=0.0791),在处方审核(5.23 分与 9.90 分,P=0.0089)、患者用药教育(6.20 分与 9.07 分,P=0.0032)、ADR 识别(5.07 分与 9.70 分,P=0.0483)和 ADR 因果关系评估(4.03 分与 9.73 分,P=0.023)方面表现较弱。根据回答的完整性和准确性,总结了 ChatGPT 在临床药学实践中的能力和局限性。ChatGPT 具有强大的检索、信息整合和对话能力。它缺乏针对药物的数据集,以及处理高级推理和复杂指令的能力。

结论

虽然 ChatGPT 作为一种补充工具在临床药学实践中具有潜力,但 ChatGPT 处理复杂问题的能力需要进一步改进和完善。

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