使用过程挖掘和联合基于agent的离散事件模拟来评估发现的临床路径

V. Augusto, Xiaolan Xie, M. Prodel, B. Jouaneton, L. Lamarsalle
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引用次数: 23

摘要

从事件日志中分析临床路径提供了关于护理过程的新见解。在本文中,我们提出了一种基于国家医院数据库自动执行患者临床路径模拟分析的新方法。过程挖掘用于构建具有高度代表性的因果网络,然后将其转换为状态图以便执行。采用联合多智能体离散事件仿真方法实现模型。提供了有资格接受植入式除颤器的心血管疾病患者的实际案例研究。已经提出了一个实验设计来研究医疗决定的影响,例如是否植入除颤器,对复发率、死亡率和成本的影响。这种方法已被证明是一种创新的方法,可以通过模拟从现有的医院数据库中提取知识,从而允许设计和测试新的场景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Evaluation of discovered clinical pathways using process mining and joint agent-based discrete-event simulation
The analysis of clinical pathways from event logs provides new insights about care processes. In this paper, we propose a new methodology to automatically perform simulation analysis of patients' clinical pathways based on a national hospital database. Process mining is used to build highly representative causal nets, which are then converted to state charts in order to be executed. A joint multi-agent discrete-event simulation approach is used to implement models. A practical case study on patients having cardiovascular diseases and eligible to receive an implantable defibrillator is provided. A design of experiments has been proposed to study the impact of medical decisions, such as implanting or not a defibrillator, on the relapse rate, the death rate and the cost. This approach has proven to be an innovative way to extract knowledge from an existing hospital database through simulation, allowing the design and test of new scenarios.
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