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Computational Comparison Of Five Maximal Covering Models For Locating Ambulances

机译:五个最大覆盖模型定位救护车的计算比较

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This article categorizes existing maximum coverage optimization models for locating ambulances based on whether the models incorporate uncertainty about (1) ambulance availability and (2) response times. Data from Edmonton, Alberta, Canada are used to test five different models, using the approximate hypercube model to compare solution quality between models. The basic maximum covering model, which ignores these two sources of uncertainty, generates solutions that perform far worse than those generated by more sophisticated models. For a specified number of ambulances, a model that incorporates both sources of uncertainty generates a configuration that covers up to 26% more of the demand than the configuration produced by the basic model.
机译:本文根据模型是否包含有关(1)救护车可用性和(2)响应时间的不确定性,对用于定位救护车的现有最大覆盖率优化模型进行分类。来自加拿大艾伯塔省埃德蒙顿的数据用于测试五个不同的模型,使用近似超立方体模型比较模型之间的解决方案质量。基本的最大覆盖率模型忽略了这两个不确定性源,所生成的解决方案要比更复杂的模型生成的解决方案差得多。对于指定数量的救护车,一个同时包含两个不确定性源的模型所产生的配置比基本模型所产生的配置要多覆盖26%的需求。

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