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迈向学习型医疗保健系统:数字医院中临床分析实施的系统评价与循证概念框架

Toward a Learning Health Care System: A Systematic Review and Evidence-Based Conceptual Framework for Implementation of Clinical Analytics in a Digital Hospital.

作者信息

Lim Han Chang, Austin Jodie A, van der Vegt Anton H, Rahimi Amir Kamel, Canfell Oliver J, Mifsud Jayden, Pole Jason D, Barras Michael A, Hodgson Tobias, Shrapnel Sally, Sullivan Clair M

机构信息

Centre for Health Services Research, Faculty of Medicine, The University of Queensland, Herston, Brisbane, Australia.

Department of Health, eHealth Queensland, Queensland Government, Brisbane, Australia.

出版信息

Appl Clin Inform. 2022 Mar;13(2):339-354. doi: 10.1055/s-0042-1743243. Epub 2022 Apr 6.

Abstract

OBJECTIVE

A learning health care system (LHS) uses routinely collected data to continuously monitor and improve health care outcomes. Little is reported on the challenges and methods used to implement the analytics underpinning an LHS. Our aim was to systematically review the literature for reports of real-time clinical analytics implementation in digital hospitals and to use these findings to synthesize a conceptual framework for LHS implementation.

METHODS

Embase, PubMed, and Web of Science databases were searched for clinical analytics derived from electronic health records in adult inpatient and emergency department settings between 2015 and 2021. Evidence was coded from the final study selection that related to (1) dashboard implementation challenges, (2) methods to overcome implementation challenges, and (3) dashboard assessment and impact. The evidences obtained, together with evidence extracted from relevant prior reviews, were mapped to an existing digital health transformation model to derive a conceptual framework for LHS analytics implementation.

RESULTS

A total of 238 candidate articles were reviewed and 14 met inclusion criteria. From the selected studies, we extracted 37 implementation challenges and 64 methods employed to overcome such challenges. We identified common approaches for evaluating the implementation of clinical dashboards. Six studies assessed clinical process outcomes and only four studies evaluated patient health outcomes. A conceptual framework for implementing the analytics of an LHS was developed.

CONCLUSION

Health care organizations face diverse challenges when trying to implement real-time data analytics. These challenges have shifted over the past decade. While prior reviews identified fundamental information problems, such as data size and complexity, our review uncovered more postpilot challenges, such as supporting diverse users, workflows, and user-interface screens. Our review identified practical methods to overcome these challenges which have been incorporated into a conceptual framework. It is hoped this framework will support health care organizations deploying near-real-time clinical dashboards and progress toward an LHS.

摘要

目的

学习型医疗保健系统(LHS)利用常规收集的数据持续监测和改善医疗保健结果。关于实施支撑LHS的分析方法所面临的挑战和使用的方法,相关报道较少。我们的目的是系统回顾文献,查找有关数字医院中实时临床分析实施情况的报告,并利用这些发现综合出一个LHS实施的概念框架。

方法

在Embase、PubMed和科学网数据库中搜索2015年至2021年间成人住院和急诊科环境下源自电子健康记录的临床分析。从最终纳入研究中提取与以下方面相关的证据:(1)仪表板实施挑战;(2)克服实施挑战的方法;(3)仪表板评估及影响。将获得的证据以及从相关既往综述中提取的证据映射到一个现有的数字健康转型模型上,以得出LHS分析实施的概念框架。

结果

共审查了238篇候选文章,14篇符合纳入标准。从所选研究中,我们提取了37项实施挑战和64种用于克服此类挑战的方法。我们确定了评估临床仪表板实施情况的常见方法。六项研究评估了临床过程结果,只有四项研究评估了患者健康结果。制定了一个实施LHS分析的概念框架。

结论

医疗保健组织在尝试实施实时数据分析时面临各种挑战。这些挑战在过去十年中发生了变化。虽然既往综述发现了诸如数据规模和复杂性等基本信息问题,但我们的综述发现了更多试点后挑战,如支持不同用户、工作流程和用户界面屏幕。我们的综述确定了克服这些挑战的实用方法,并已将其纳入一个概念框架。希望这个框架将支持医疗保健组织部署近实时临床仪表板,并朝着LHS迈进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bd2/8986462/41146961ca36/10-1055-s-0042-1743243-i210202r-1.jpg

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