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Risk-adjusted Bernoulli chart in multi-stage healthcare processes based on state-space model with a latent risk variable and dynamic probability control limits

机译:基于具有潜在风险变量和动态概率控制限制的状态空间模型的多阶段医疗过程中经过风险调整的伯努利图

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摘要

Healthcare-related processes are usually multistage in nature, and the output of each stage is the input of the subsequent stage. However, most existing monitoring schemes consider the individual stages of the healthcare process without considering both inter-stage and intra-stage links. The modeling of multistage healthcare processes based on the state-space model describes the cascade property of the risks and outcomes in subsequent stages. The present paper proposes a Bernoulli state-space model in which unmeasurable risks of processes are considered as a latent risk variable to give a realistic estimate of potential risks. In the proposed monitoring scheme for multistage medical processes, in addition to Parsonnet scores, the other categorical operational covariates are considered. Moreover, dynamic probability control limits are applied to remove the effect of patient risk distributions on in-control average run length performance. Simulation results reveal that the proposed risk-adjusted Bernoulli group exponentially weighted moving average chart for multistage healthcare processes performs satisfactorily under different shifts. Moreover, the proposed monitoring scheme helps to identify the out-of-control stage of the healthcare process to remove the corresponding assignable cause.
机译:与医疗保健相关的过程通常本质上是多阶段的,每个阶段的输出就是后续阶段的输入。但是,大多数现有的监视方案都考虑了医疗过程的各个阶段,而没有同时考虑阶段间和阶段内的联系。基于状态空间模型的多阶段医疗过程的建模描述了后续阶段风险和结果的级联特性。本文提出了一种伯努利状态空间模型,其中将过程的不可衡量的风险视为潜在风险变量,以对潜在风险进行实际估计。在拟议的多阶段医疗过程监控方案中,除了Parsonnet评分之外,还考虑了其​​他分类操作协变量。此外,应用动态概率控制限制来消除患者风险分布对控制中平均行程长度性能的影响。仿真结果表明,所提出的风险调整后的伯努利组指数加权移动平均线图在多阶段医疗保健过程中表现令人满意。此外,建议的监视方案有助于识别医疗保健过程的失控阶段,以消除相应的可分配原因。

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