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An Effective Approach for the Multiobjective Regional Low-Carbon Location-Routing Problem

机译:多目标区域低碳选址问题的一种有效方法

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摘要

In this paper, we consider a variant of the location-routing problem (LRP), namely the the multiobjective regional low-carbon LRP (MORLCLRP). The MORLCLRP seeks to minimize service duration, client waiting time, and total costs, which includes carbon emission costs and total depot, vehicle, and travelling costs with respect to fuel consumption, and considers three practical constraints: simultaneous pickup and delivery, heterogeneous fleet, and hard time windows. We formulated a multiobjective mixed integer programming formulations for the problem under study. Due to the complexity of the proposed problem, a general framework, named the multiobjective hyper-heuristic approach (MOHH), was applied for obtaining Pareto-optimal solutions. Aiming at improving the performance of the proposed approach, four selection strategies and three acceptance criteria were developed as the high-level heuristic (HLH), and three multiobjective evolutionary algorithms (MOEAs) were designed as the low-level heuristics (LLHs). The performance of the proposed approach was tested for a set of different instances and comparative analyses were also conducted against eight domain-tailored MOEAs. The results showed that the proposed algorithm produced a high-quality Pareto set for most instances. Additionally, extensive analyses were also carried out to empirically assess the effects of domain-specific parameters (i.e., fleet composition, client and depot distribution, and zones area) on key performance indicators (i.e., hypervolume, inverted generated distance, and ratio of nondominated individuals). Several management insights are provided by analyzing the Pareto solutions.
机译:在本文中,我们考虑了位置路由问题(LRP)的一种变体,即多目标区域低碳LRP(MORLCLRP)。 MORLCLRP力求将服务持续时间,客户等待时间和总成本(包括碳排放成本以及总油耗,车辆和与燃料消耗有关的旅行成本)最小化,并考虑了三个实际限制:同时取货和交付,异构车队,和困难时期。我们针对所研究的问题制定了多目标混合整数规划公式。由于所提出问题的复杂性,将通用框架称为多目标超启发式方法(MOHH),用于获得帕累托最优解。为了提高所提出方法的性能,开发了四种选择策略和三种接受标准作为高级启发式算法(HLH),并设计了三种多目标进化算法(MOEA)作为低级启发式算法(LLH)。针对一组不同的实例测试了所提出方法的性能,并针对八个领域定制的MOEA进行了比较分析。结果表明,所提出的算法在大多数情况下都能产生高质量的Pareto集。此外,还进行了广泛的分析,以经验评估特定领域的参数(即,车队组成,客户和仓库的分布以及区域面积)对关键绩效指标(例如,超量,反向生成的距离和非主导比例)的影响。个人)。通过分析Pareto解决方案,可以提供一些管理见解。

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