基于离散事件模拟和分层聚类的患者管理系统

A. Virtue, T. Chaussalet, P. Millard, P. Whittlestone, J. Kelly
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引用次数: 17

摘要

英国医院急症室(A&E)的目标是在4小时内治疗98%的病人,从到达医院到出院、入院或转院。管理资源,以满足目标,并提供护理的范围内的急症室服务是一个巨大的挑战,急症室经理。本文开发了一种智能患者管理工具,以帮助管理人员和临床医生更好地了解患者在A&E区域的住院时间和资源。所开发的离散事件仿真模型给出了救护车到达急诊室的高级表示。该模型通过以下方式便于分析:可视化交互软件显示患者在急诊科区的住院时间;把病人的活动分成几个小组,这样就可以收集到关于小组如何影响总住院时间的情报;了解病人治疗名额和所需护士资源的数量。为了方便场景和灵敏度测试的输入,数据通过Excel电子表格输入到模拟模型(SimulS)中。本文讨论的模型使用按急诊诊断代码分组的患者住院时间,并且仅限于救护车到达。该分析来源于2004年一家英国医院急诊室的出诊情况
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A System for Patient Management Based Discrete-Event Simulation and Hierarchical Clustering
Hospital Accident and Emergency (A&E) departments in England have a 4 hour target to treat 98% of patients from arrival to discharge, admission or transfer. Managing resources to meet the target and deliver care across the range of A&E services is a huge challenge for A&E managers. This paper develops an intelligent patient management tool to help managers and clinicians better understand patient length of stay and resources within an A&E area. The developed discrete-event simulation model gives a highlevel representation of ambulance arrivals into A&E. The model facilitates analysis in the following ways: visually interactive software showing patient length of stay in the A&E area; patient activity broken down into sub-groups so that intelligence might be gathered on how sub-groups affect the overall length of stay; understanding the number of patient treatment places and nurse resources required. To support ease of inputs for scenario and sensitivity testing, data is entered into the simulation model (SimulS) via Excel spreadsheets. The model discussed in this paper used patient length of stay grouped by A&E diagnosis codes and was limited to ambulance arrivals. The analysis was derived from A&E attendance in 2004 from an English hospital
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