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MDP based inpatient premature discharge decision making in hierarchical medical system

机译:基于MDP的分级医疗系统住院早泄决策。

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In Chinese hierarchical medical system, hospitals are divided into different levels according to different types of treatment. However, due to lack of clear regulation, many patients visit upper-level hospitals even for simple services while more severe patients may encounter denial of care. To solve this problem, reverse referral, i.e., transferring premature inpatients from upper-level hospitals (ULH) to lower-level hospitals (LLH) has been proposed. Therefore, how to make decisions for the crowded ULH to implement the reverse referral and at the same time maximizing its profit is quite essential to be studied. The classical dynamic programming method of Markov Decision Process (MDP) is applied to build the inpatient referral model in this paper. We provide an optimal dynamic control policy and all the numerical results are analyzed. The results show that an optimal referral policy is feasible in the real life and helpful to motivate reverse referral.
机译:在中国的分级医疗体系中,医院根据治疗类型的不同而划分为不同的级别。但是,由于缺乏明确的法规,许多患者甚至为了简单的服务而去了上级医院,而更严重的患者可能会遇到拒绝护理的情况。为了解决该问题,已经提出了反向转诊,即,将早产患者从上级医院(ULH)转移到下级医院(LLH)。因此,如何为拥挤的ULH做出决策以实施反向引用并同时使其利润最大化是非常有待研究的问题。本文采用经典的马尔可夫决策过程动态规划方法建立住院病人转诊模型。我们提供了最佳的动态控制策略,并对所有数值结果进行了分析。结果表明,最优推荐策略在现实生活中是可行的,有助于激发反向推荐。

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