A methodology for developing evidence-based optimization models in humanitarian logistics

Author:

Baharmand HosseinORCID,Vega Diego,Lauras Matthieu,Comes Tina

Abstract

AbstractThe growing need for humanitarian assistance has inspired an increasing amount of academic publications in the field of humanitarian logistics. Over the past two decades, the humanitarian logistics literature has developed a powerful toolbox of standardized problem formulations to address problems ranging from distribution to scheduling or locations planning. At the same time, the humanitarian field is quickly evolving, and problem formulations heavily rely on the context, leading to calls for more evidence-based research. While mixed methods research designs provide a promising avenue to embed research in the reality of the field, there is a lack of rigorous mixed methods research designs tailored to translating field findings into relevant HL optimization models. In this paper, we set out to address this gap by providing a systematic mixed methods research design for HL problem in disasters response. The methodology includes eight steps taking into account specifics of humanitarian disasters. We illustrate our methodology by applying it to the 2015 Nepal earthquake response, resulting in two evidence-based HL optimization models.

Funder

Hanken School of Economics

Publisher

Springer Science and Business Media LLC

Subject

Management Science and Operations Research,General Decision Sciences

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1. A Systematic Review of The Literature on Humanitarian Logistics Using Multimethod Analysis;Revista de Gestão Social e Ambiental;2024-01-29

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3. Assessing the value of supply chain management in the humanitarian context – An evidence-based research approach;Journal of Humanitarian Logistics and Supply Chain Management;2022-12-06

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