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用于真实世界研究的临床文本数据表示和利用:OHDSI 方法。

Representing and utilizing clinical textual data for real world studies: An OHDSI approach.

机构信息

Section of Biomedical Informatics and Data Science, Yale School of Medicine, Yale University, New Haven, CT, USA.

Department of Computer Science, Georgia State University, Atlanta, GA, USA.

出版信息

J Biomed Inform. 2023 Jun;142:104343. doi: 10.1016/j.jbi.2023.104343. Epub 2023 Mar 17.

Abstract

Clinical documentation in electronic health records contains crucial narratives and details about patients and their care. Natural language processing (NLP) can unlock the information conveyed in clinical notes and reports, and thus plays a critical role in real-world studies. The NLP Working Group at the Observational Health Data Sciences and Informatics (OHDSI) consortium was established to develop methods and tools to promote the use of textual data and NLP in real-world observational studies. In this paper, we describe a framework for representing and utilizing textual data in real-world evidence generation, including representations of information from clinical text in the Observational Medical Outcomes Partnership (OMOP) Common Data Model (CDM), the workflow and tools that were developed to extract, transform and load (ETL) data from clinical notes into tables in OMOP CDM, as well as current applications and specific use cases of the proposed OHDSI NLP solution at large consortia and individual institutions with English textual data. Challenges faced and lessons learned during the process are also discussed to provide valuable insights for researchers who are planning to implement NLP solutions in real-world studies.

摘要

电子健康记录中的临床文档包含有关患者及其护理的关键叙述和详细信息。自然语言处理 (NLP) 可以揭示临床记录和报告中传达的信息,因此在真实世界的研究中起着至关重要的作用。观察性健康数据科学和信息学 (OHDSI) 联盟的 NLP 工作组成立的目的是开发方法和工具,以促进在真实世界观察性研究中使用文本数据和 NLP。在本文中,我们描述了一个在真实世界证据生成中表示和利用文本数据的框架,包括在观察性医学结局伙伴关系 (OMOP) 通用数据模型 (CDM) 中表示临床文本中的信息,以及为从临床记录中提取、转换和加载 (ETL) 数据到 OMOP CDM 中的表而开发的工作流程和工具,以及大型联盟和使用英语文本数据的个别机构中提出的 OHDSI NLP 解决方案的当前应用和特定用例。还讨论了在该过程中面临的挑战和吸取的经验教训,为计划在真实世界研究中实施 NLP 解决方案的研究人员提供了有价值的见解。

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