首页> 外文期刊>Journal of the American Medical Informatics Association : >Automated evaluation of electronic discharge notes to assess quality of care for cardiovascular diseases using Medical Language Extraction and Encoding System (MedLEE).
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Automated evaluation of electronic discharge notes to assess quality of care for cardiovascular diseases using Medical Language Extraction and Encoding System (MedLEE).

机译:使用医学语言提取和编码系统(MedLEE)对电子放电笔记进行自动评估,以评估心血管疾病的护理质量。

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摘要

The objective of this study was to develop and validate an automated acquisition system to assess quality of care (QC) measures for cardiovascular diseases. This system combining searching and retrieval algorithms was designed to extract QC measures from electronic discharge notes and to estimate the attainment rates to the current standards of care. It was developed on the patients with ST-segment elevation myocardial infarction and tested on the patients with unstable anginaon-ST-segment elevation myocardial infarction, both diseases sharing almost the same QC measures. The system was able to reach a reasonable agreement (kappa value) with medical experts from 0.65 (early reperfusion rate) to 0.97 (beta-blockers and lipid-lowering agents before discharge) for different QC measures in the test set, and then applied to evaluate QC in the patients who underwent coronary artery bypass grafting surgery. The result has validated a new tool to reliably extract QC measures for cardiovascular diseases.
机译:这项研究的目的是开发和验证自动采集系统,以评估心血管疾病的护理质量(QC)措施。该系统结合了搜索和检索算法,旨在从电子出院笔记中提取质量控制措施,并评估达到当前护理标准的达标率。它是针对ST段抬高型心肌梗死患者开发的,并针对不稳定型心绞痛/非ST段抬高型心肌梗死的患者进行了测试,两种疾病的QC措施几乎相同。对于测试集中的不同质量控制措施,该系统能够与医学专家达成合理的协议(kappa值),范围从0.65(早期再灌注率)到0.97(出院前的β受体阻滞剂和降血脂药),然后应用于评估接受冠状动脉搭桥术的患者的质量控制。结果验证了一种新工具,可以可靠地提取出针对心血管疾病的质量控制措施。

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