Please use this identifier to cite or link to this item: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/3463
Title: Pastoralist Optimization Algorithm (POA): A Culture-Inspired Metaheuristic for Uncapacitated Facility Location Problem (UFLP)
Authors: Abdullahi, Ibrahim Mohammed
Mu'azu, Mohammed Bashir
Olaniyi, Olayemi Mikail
Agajo, James
Keywords: Pastoralist Optimization Algorithm (POA)
Metaheuristic algorithms
Uncapacitated Facility Location Problem (UFLP)
Issue Date: 17-Apr-2021
Publisher: Springer, Cham
Citation: Abdullahi I.M., Mu’azu M.B., Olaniyi O.M., Agajo J. (2021) Pastoralist Optimization Algorithm (POA): A Culture-Inspired Metaheuristic for Uncapacitated Facility Location Problem (UFLP). In: Abraham A., Hanne T., Castillo O., Gandhi N., Nogueira Rios T., Hong TP. (eds) Hybrid Intelligent Systems. HIS 2020. Advances in Intelligent Systems and Computing, vol 1375. Springer, Cham. https://doi.org/10.1007/978-3-030-73050-5_72
Series/Report no.: Advances in Intelligent Systems and Computing;
Abstract: In this paper, the performance of the recently developed Pastoralist Optimization Algorithm (POA) on classical uncapacitated Facility Location problem (UFLP) was investigated. POA is a culture-inspired metaheuristic motivated by the herding schemes of Nomadic Pastoralist (NP). The NP seek optimal herding location for their livestock using some well-defined and robust strategies. UFLP is an NP-hard problem from which many facility location and real-world problems are built around. In this paper, five UFLP datasets were used for the experiments each comprising of five cities and seven, fifteen, thirty, fifty and one hundred cities respectively. The performance of POA was compared and validated with some popular and similar metaheuristic algorithms such as ABC, BBO and PSO. The results obtained proves POA competiveness and superiority in obtaining the lowest allocation cost and convergence rate as the data size increases.
URI: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/3463
ISBN: 978-3-030-73050-5
Appears in Collections:Computer Engineering

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