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A greedy-tabu approach to the patient bed assignment problem in the Hospital Universitario San Ignacio

机译:San Ignacio医院患者床分配问题的贪婪 - 禁忌方法

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Patient Bed Assignment (PBA) consists of assigning patients to hospital beds according to specific requirements such as patient diagnosis, equipment requirements, age and gender policies, among others. We worked in conjunction with the Hospital Universitario San Ignacio (HUSI) with the goal of designing an application to support decision-making during the bed assignment process. We introduced a mathematical model for the PBA. We used Analytic Hierarchy Process (AHP) to determine the weights attributed to each part of the objective function. Due to the long execution time required, we used a Greedy Algorithm and Tabu Search (TS) to optimize the match between the patient’s requirements and the characteristics of the assigned bed. To test the algorithms, we created 15 test instances of various sizes. The results showed?that the gap between the value of the objective function resulting from using the Greedy/TS in comparison with the optimal solution is on average 6.2%. Also, the TS takes 84% less time than the MILP for medium and large instances. We collected data from real life instances and compared the actual method with the designed metaheuristic. On average, the value of the objective function resulting from using the proposed Greedy/Tabu algorithm is 8.6% higher.
机译:患者床分配(PBA)包括根据患者诊断,设备要求,年龄和性别政策等具体要求将患者分配给医院病床。我们与San Ignacio(Husi)一起与医院大学(Husi)一起设计,以指定在床分配过程中支持决策的应用程序。我们为PBA介绍了一个数学模型。我们使用了分析层次处理(AHP)来确定归因于目标函数的每个部分的权重。由于所需的执行时间长,我们使用了贪婪算法和禁忌搜索(TS)来优化患者要求与分配床的特性之间的匹配。为了测试算法,我们创建了各种尺寸的15个测试实例。结果表明了,使用贪婪/ TS与最佳解决方案相比使用的目标函数的值与平均为6.2%。此外,TS比MILP适用于中型和大型实例,TS少84%。我们从现实生活实例收集数据,并将实际方法与设计的成群质结构进行了比较。平均而言,使用所提出的贪婪/禁忌算法产生的目标函数的值高8.6%。

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