Equitable post-disaster relief distribution: a robust multi-objective multi-stage optimization approach

IF 3.2 Q2 MANAGEMENT
Sogand Soghrati Ghasbeh, Nadia Pourmohammadzia, M. Rabbani
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引用次数: 1

Abstract

PurposeThis paper aims to address a location-distribution-routing problem for distributing relief commodities during a disaster under uncertainty by creating a multi-stage model that can consider information updates during the disaster. This model aims to create a relief network that chooses distribution centers with the highest value while maximizing equity and minimizing response time.Design/methodology/approachA hybrid algorithm of adaptive large neighborhood search (ALNS) and multi-dimensional local search (MDLS) is introduced to solve the problem. Its results are compared to ALNS and an augmented epsilon constraint (AUGMECON) method.FindingsThe results show that the hybrid algorithm can obtain high-quality solutions within reasonable computation time compared to the exact solution. However, while it yields better solutions compared to ALNS, the solution is obtained in a little longer amount of time.Research limitations/implicationsIn this paper, the uncertain nature of some key features of the relief operations problem is not discussed. Moreover, some assumptions assumed to simplify the proposed model should be verified in future studies.Practical implicationsIn order to verify the effectiveness of the designed model, a case study of the Sarpol Zahab earthquake in 2017 is illustrated and based on the results and the sensitivity analyses, some managerial insights are listed to help disaster managers make better decisions during disasters.Originality/valueA novel robust multi-stage linear programming model is designed to address the location-distribution-routing problem during a disaster and to solve this model an efficient hybrid meta-heuristic model is developed.
公平的灾后救灾分配:一种稳健的多目标多阶段优化方法
目的本文旨在通过创建一个可以考虑灾难期间信息更新的多阶段模型来解决在不确定的灾难期间分发救援物资的位置-分发-路由问题。该模型旨在创建一个救济网络,选择价值最高的配送中心,同时最大限度地提高公平性并最小化响应时间。设计/方法论/方法引入自适应大邻域搜索(ALNS)和多维局部搜索(MDLS)的混合算法来解决这个问题。将其结果与ALNS和增强ε约束(AUGMECON)方法进行了比较。结果表明,与精确解相比,混合算法可以在合理的计算时间内获得高质量的解。然而,尽管与ALNS相比,它产生了更好的解决方案,但该解决方案需要更长的时间。研究局限性/含义在本文中,没有讨论救援行动问题的一些关键特征的不确定性。此外,应在未来的研究中验证为简化拟议模型而假设的一些假设。实际含义为了验证所设计模型的有效性,以2017年萨波尔-扎哈布地震为例进行了说明,并根据结果和敏感性分析,列出了一些管理见解,以帮助灾害管理者在灾害期间做出更好的决策。独创性/价值设计了一个新的鲁棒多阶段线性规划模型来解决灾难期间的位置分配路由问题,并开发了一个有效的混合元启发式模型来解决该模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.40
自引率
20.00%
发文量
20
期刊介绍: The Journal of Humanitarian Logistics and Supply Chain Management (JHLSCM) is targeted at academics and practitioners in humanitarian public and private sector organizations working on all aspects of humanitarian logistics and supply chain management. The journal promotes the exchange of knowledge, experience and new ideas between researchers and practitioners and encourages a multi-disciplinary and cross-functional approach to the resolution of problems and exploitations of opportunities within humanitarian supply chains. Contributions are encouraged from diverse disciplines (logistics, operations management, process engineering, health care, geography, management science, information technology, ethics, corporate social responsibility, disaster management, development aid, public policy) but need to have a logistics and/or supply chain focus. JHLSCM publishes state of the art research, utilizing both quantitative and qualitative approaches, in the field of humanitarian and development aid logistics and supply chain management.
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