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Waste collection under uncertainty: A simheuristic based on variable neighbourhood search

Laura Calvet, Aljoscha Gruler*, Carlos L. Quintero-Araújo, Angel A. Juan

*Autor corresponent d’aquest treball

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Resum

Ongoing population growth in cities and increasing waste production has made the optimisation of urban waste management a critical task for local governments. Route planning in waste collection can be formulated as an extended version of the well-known vehicle routing problem, for which a wide range of solution methods already exist. Despite the fact that real-life applications are characterised by high uncertainty levels, most works on waste collection assume deterministic inputs. In order to partially close this literature gap, this paper first proposes a competitive metaheuristic algorithm based on a variable neighbourhood search framework for the deterministic waste collection problem. Then, this metaheuristic is extended to a simheuristic algorithm in order to deal with the stochastic problem version. This extension is achieved by integrating simulation into the metaheuristic framework, which also allows a closer risk analysis of the best-found stochastic solutions. Different computational experiments illustrate the potential of our methodology.
Idioma originalAnglès
Pàgines (de-a)228-255
Nombre de pàgines28
RevistaEuropean Journal of Industrial Engineering
Volum11
Número2
DOIs
Estat de la publicacióPublicada - 2017

SDG de les Nacions Unides

Aquest resultat contribueix als següents objectius de desenvolupament sostenible.

  1. ODG 11 – Ciutats i comunitats sostenibles
    ODG 11 – Ciutats i comunitats sostenibles
  2. ODG 12 – Consum i producció responsables
    ODG 12 – Consum i producció responsables

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