DocumentCode :
677738
Title :
Coupling ant colony optimization and discrete-event simulation to solve a stochastic location-routing problem
Author :
Herazo-Padilla, Nilson ; Montoya-Torres, Jairo R. ; Munoz-Villamizar, Andres ; Nieto Isaza, Santiago ; Ramirez Polo, Luis
Author_Institution :
Escuela Internacional de Cienc. Economicas y Administrativas, Univ. de La Sabana, Chia, Colombia
fYear :
2013
fDate :
8-11 Dec. 2013
Firstpage :
3352
Lastpage :
3362
Abstract :
This paper considers the stochastic version of the location-routing problem (SLRP) in which transportation cost and vehicle travel speeds are both stochastic. A hybrid solution procedure based on Ant Colony Optimization (ACO) and Discrete-Event Simulation (DES) is proposed. After using a sequential heuristic algorithm to solve the location subproblem, ACO is employed to solve the corresponding vehicle routing problem. DES is finally used to evaluate such vehicle routes in terms of their impact on the expected total costs of location and transport to customers. The approach is tested using random-generated data sets. because there are no previous works in literature that considers the same stochastic location-routing problem, the procedure is compared against the deterministic version of the problem. Results show that the proposed approach is very efficient and effective.
Keywords :
ant colony optimisation; costing; discrete event simulation; vehicle routing; ACO; DES; SLRP; ant colony optimization; discrete-event simulation; expected total costs; hybrid solution procedure; location cost; sequential heuristic algorithm; stochastic location-routing problem; transportation cost; vehicle travel speeds; Algorithm design and analysis; Ant colony optimization; Approximation algorithms; Planning; Routing; Stochastic processes; Vehicles;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Simulation Conference (WSC), 2013 Winter
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4799-2077-8
Type :
conf
DOI :
10.1109/WSC.2013.6721699
Filename :
6721699
Link To Document :
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