On Integrating Population-Based Metaheuristics with Cooperative Parallelism

dc.contributor.authorLopez, Jheisson
dc.contributor.authorMunera, Danny
dc.contributor.authorDiaz, Daniel
dc.contributor.authorAbreu, Salvador
dc.date.accessioned2019-02-18T16:13:09Z
dc.date.available2019-02-18T16:13:09Z
dc.date.issued2018-05
dc.description.abstractMany real-life applications can be formulated as Combinatorial Optimization Problems, the solution of which is often challenging due to their intrinsic difficulty. At present, the most effective methods to address the hardest problems entail the hybridization of metaheuristics and cooperative parallelism. Recently, a framework called CPLS has been proposed, which eases the cooperative parallelization of local search solvers. Being able to run different heuristics in parallel, CPLS has opened a new way to hybridize metaheuristics, thanks to its cooperative parallelism mechanism. However, CPLS is mainly designed for local search methods. In this paper we seek to overcome the current CPLS limitation, extending it to enable population-based metaheuristics in the hybridization process. We discuss an initial prototype implementation for Quadratic Assignment Problem combining a Genetic Algorithm with two local search procedures. Our experiments on hard instances of QAP show that this hybrid solver performs competitively w.r.t. dedicated QAP parallel solvers.por
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dc.identifier.authoremailnd
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dc.identifier.authoremailspa@uevora.pt
dc.identifier.citationLopez, J., Munera, D., Diaz, D., & Abreu, S. (2018, May). On Integrating Population-Based Metaheuristics with Cooperative Parallelism. In 2018 IEEE International Parallel and Distributed Processing Symposium Workshops (IPDPSW) (pp. 601-608). IEEE.por
dc.identifier.doihttps://doi.org/10.1109/IPDPSW.2018.00100por
dc.identifier.urihttps://doi.org/10.1109/IPDPSW.2018.00100
dc.identifier.urihttp://hdl.handle.net/10174/24743
dc.language.isoengpor
dc.peerreviewedyespor
dc.publisherIEEE Computer Societypor
dc.rightsopenAccesspor
dc.titleOn Integrating Population-Based Metaheuristics with Cooperative Parallelismpor
dc.typearticlepor

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