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数据包络分析在急诊科及急诊情况管理中的应用:一项叙述性综述

The Application of Data Envelopment Analysis to Emergency Departments and Management of Emergency Conditions: A Narrative Review.

作者信息

Mirmozaffari Mirpouya, Kamal Noreen

机构信息

Department of Industrial Engineering, Dalhousie University, 5269 Morris Street, Halifax, NS B3H 4R2, Canada.

出版信息

Healthcare (Basel). 2023 Sep 14;11(18):2541. doi: 10.3390/healthcare11182541.

Abstract

The healthcare industry is one application for data envelopment analysis (DEA) that can have significant benefits for standardizing health service delivery. This narrative review focuses on the application of DEA in emergency departments (EDs) and the management of emergency conditions such as acute ischemic stroke and acute myocardial infarction (AMI). This includes benchmarking the proportion of patients that receive treatment for these emergency conditions. The most frequent primary areas of study motivating work in DEA, EDs and management of emergency conditions including acute management of stroke are sorted into five distinct clusters in this study: (1) using basic DEA models for efficiency analysis in EDs, i.e., applying variable return to scale (VRS), or constant return to scale (CRS) to ED operations; (2) combining advanced and basic DEA approaches in EDs, i.e., applying super-efficiency with basic DEA or advanced DEA approaches such as additive model (ADD) and slack-based measurement (SBM) to clarify the dynamic aspects of ED efficiency throughout the duration of a first-aid program for AMI or heart attack; (3) applying DEA time series models in EDs like the early use of thrombolysis and percutaneous coronary intervention (PCI) in AMI treatment, and endovascular thrombectomy (EVT) in acute ischemic stroke treatment, i.e., using window analysis and Malmquist productivity index (MPI) to benchmark the performance of EDs over time; (4) integrating other approaches with DEA in EDs, i.e., combining simulations, machine learning (ML), multi-criteria decision analysis (MCDM) by DEA to reduce patient waiting times, and futile transfers; and (5) applying various DEA models for the management of acute ischemic stroke, i.e., using DEA to increase the number of eligible acute ischemic stroke patients receiving EVT and other medical ischemic stroke treatment in the form of thrombolysis (alteplase and now Tenecteplase). We thoroughly assess the methodological basis of the papers, offering detailed explanations regarding the applied models, selected inputs and outputs, and all relevant methodologies. In conclusion, we explore several ways to enhance DEA's status, transforming it from a mere technical application into a strong methodology that can be utilized by healthcare managers and decision-makers.

摘要

医疗保健行业是数据包络分析(DEA)的一个应用领域,它对于规范医疗服务提供具有显著益处。本叙述性综述聚焦于DEA在急诊科(ED)中的应用以及对急性缺血性中风和急性心肌梗死(AMI)等急症的管理。这包括对接受这些急症治疗的患者比例进行基准对比。在本研究中,激励DEA、急诊科及急症管理(包括中风的急性管理)相关工作的最常见主要研究领域被分为五个不同类别:(1)在急诊科使用基本DEA模型进行效率分析,即对急诊科运营应用可变规模报酬(VRS)或固定规模报酬(CRS);(2)在急诊科结合先进和基本DEA方法,即对基本DEA应用超效率,或对诸如加法模型(ADD)和基于松弛量的测度(SBM)等先进DEA方法,以阐明在AMI或心脏病发作急救程序全过程中急诊科效率的动态方面;(3)在急诊科应用DEA时间序列模型,如在AMI治疗中早期使用溶栓和经皮冠状动脉介入治疗(PCI),以及在急性缺血性中风治疗中使用血管内血栓切除术(EVT),即使用窗口分析和Malmquist生产率指数(MPI)来基准对比急诊科随时间的表现;(4)在急诊科将其他方法与DEA相结合,即通过DEA结合模拟、机器学习(ML)、多标准决策分析(MCDM)以减少患者等待时间和无效转运;(5)应用各种DEA模型管理急性缺血性中风,即使用DEA增加接受EVT及其他以溶栓(阿替普酶以及现在的替奈普酶)形式进行的缺血性中风医疗治疗的符合条件的急性缺血性中风患者数量。我们全面评估了这些论文的方法基础,对所应用的模型、选定的输入和输出以及所有相关方法提供了详细解释。总之,我们探索了几种提升DEA地位的方法,将其从单纯的技术应用转变为一种可供医疗保健管理者和决策者使用的强大方法。

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