The stochastic location-routing problem with parallel truck–drone operations for humanitarian aid delivery

IF 6 2区 管理学 Q1 OPERATIONS RESEARCH & MANAGEMENT SCIENCE
Hannan Tureci-Isik, Melih Çelik, Ece Sanci
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引用次数: 0

Abstract

Timely response in the aftermath of a disaster is crucial to alleviate loss of life and suffering. Timeliness of relief may be hampered by road network disruptions caused by the disaster, such as damage to road segments or debris covering the roads. The use of drones simultaneously with trucks can potentially help overcome issues around network disruptions and achieve more timely delivery of post-disaster aid. In an effort to shed more light into this potential, we address the problem of network design for parallel truck–drone operations by depot location prior to the disaster and routing of the vehicles in its aftermath. We incorporate the uncertainty on network disruption by modelling this problem as a two-stage stochastic program, which proves computationally challenging to solve to optimality for real-life disaster scenarios. Consequently, we propose a tailored heuristic based on variable neighbourhood search to find high-quality solutions efficiently. Our computational results on randomly generated instances and a case study from the 2011 Van Earthquake in Turkiye demonstrate the effectiveness of the heuristic, the benefits of employing both trucks and drones, and the significance of accounting for uncertainties in pre-disaster planning.
人道主义救援物资运送中卡车-无人机并行操作的随机定位路径问题
灾后及时反应对于减轻生命损失和痛苦至关重要。救灾的及时性可能会受到灾害造成的道路网络中断的影响,例如路段受损或覆盖道路的碎片。同时使用无人机和卡车可能有助于克服网络中断的问题,并实现更及时的灾后援助。为了更深入地了解这一潜力,我们通过灾难前的仓库位置和灾难后车辆的路线来解决并行卡车-无人机操作的网络设计问题。我们通过将该问题建模为两阶段随机程序来纳入网络中断的不确定性,这证明了在计算上具有挑战性,以解决现实生活中灾难场景的最优性。因此,我们提出了一种基于可变邻域搜索的定制启发式算法,以有效地找到高质量的解决方案。我们对随机生成实例的计算结果和2011年土耳其Van地震的案例研究表明了启发式方法的有效性,同时使用卡车和无人机的好处,以及在灾前规划中考虑不确定性的重要性。
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来源期刊
European Journal of Operational Research
European Journal of Operational Research 管理科学-运筹学与管理科学
CiteScore
11.90
自引率
9.40%
发文量
786
审稿时长
8.2 months
期刊介绍: The European Journal of Operational Research (EJOR) publishes high quality, original papers that contribute to the methodology of operational research (OR) and to the practice of decision making.
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