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A multi-objective evolutionary algorithm for emergency logistics scheduling in large-scale disaster relief

机译:大规模救灾应急物流调度的多目标进化算法

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The emergency logistics scheduling (ELS) is to enable the dispatch of emergency supplies to the victims of disasters timely and effectively, which plays a crucial role in large-scale disaster relief. In this paper, we first design a new multi-objective model that considers both the total unsatisfied time and transportation cost for the ELS problem in large-scale disaster relief (ELSP-LDR), which is on the scenery of multi-disasters and multi-suppliers with several kinds of resources and vehicles. Then, a modified non-dominated sorting genetic algorithm II (mNSGA-II) is proposed to search for a variety of optimal emergency scheduling plans for decision-makers. With the intrinsic properties of ELSP-LDR in mind, we design three repair operators to generate improved feasible solutions. Compared with the original NSGA-II, a local search operator is also designed for mNSGA-II, which significantly improves the performance. We conduct two experiments (the case of Chi-Chi earthquake and Great Sichuan Earthquake) to validate the performance of the proposed algorithm.
机译:紧急后勤调度(ELS)是为了使紧急物资能够及时有效地分发给灾民,这在大规模救灾中起着至关重要的作用。在本文中,我们首先设计了一个新的多目标模型,该模型同时考虑了多灾种和多灾种情况下大规模救灾(ELSP-LDR)中ELS问题的总未满足时间和运输成本-具有几种资源和车辆的供应商。然后,提出了一种改进的非支配排序遗传算法II(mNSGA-II),以搜索决策者的各种最佳应急调度计划。考虑到ELSP-LDR的固有属性,我们设计了三个维修操作员以生成改进的可行解决方案。与原始NSGA-II相比,还为mNSGA-II设计了本地搜索运算符,从而显着提高了性能。我们进行了两个实验(以集集地震和四川大地震为例),以验证所提出算法的性能。

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