A Risk-Based Location-Allocation Approach for Weapon Logistics
Autor: | Samer Haffar, Cihan Çetinkaya |
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Jazyk: | angličtina |
Rok vydání: | 2018 |
Předmět: |
lcsh:Management. Industrial management
Operations research Turkish Computer science lcsh:Transportation and communication lcsh:K4011-4343 ComputerApplications_COMPUTERSINOTHERSYSTEMS homeland defense location-allocation risk weapon logistics Training (civil) lcsh:HE1-9990 language.human_language Unit (housing) Homeland defense lcsh:HD28-70 language Location-allocation lcsh:Transportation and communications Set (psychology) Military organization |
Zdroj: | Logistics, Vol 2, Iss 2, p 9 (2018) Logistics; Volume 2; Issue 2; Pages: 9 |
ISSN: | 2305-6290 |
Popis: | Governments have vital missions, such as securing their nation from many internal or external risks/threats. Thus, they prepare themselves against different scenarios. The most common scenario for all countries is “facing attacks from other countries”. However, training for these scenarios is not possible because military exercises are too expensive. The contribution of this paper is a scientific approach proposed for such a scenario. A mathematical model is developed to allocate different weapon types to a set of candidate locations (demand nodes, the military installations that need weapons) while minimizing total transportation costs, setup costs, and allocation risk. The risk arises from allocating the weapons to other military units as backups during a conflict. The risk increases when one military unit allocates their weapons to another unit during attacks. The mathematical model is tested on a case study problem of Turkish Land Forces. This case study is solved in 14 min, and the optimal total transportation and setup costs are determined. Since it is very important to make quick decisions during an attack, this scientific approach and computational time can be useful for military decision makers. Additionally, the results of this study can guarantee that any attack can be handled with the minimum cost and risk. |
Databáze: | OpenAIRE |
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