A populated local search with differential evolution for blocking flowshop scheduling problem

dc.contributor.author M. Fatih Tasgetiren
dc.contributor.author Quanke Pan
dc.contributor.author Damla Kizilay
dc.contributor.author Gürsel A. Süer
dc.date.accessioned 2025-10-06T17:52:19Z
dc.date.issued 2015
dc.description.abstract This paper presents a populated local search algorithm through a differential evolution algorithm for solving the blocking flowshop scheduling problem under makespan criterion. Iterated greedy and iterated local search algorithms are simple but extremely effective in solving scheduling problems. However these two algorithms have some parameters to be tuned for which it requires a design of experiments with expensive runs. In this paper we propose a novel multi-chromosome solution representation for both local search and differential evolution algorithm which is responsible for providing the parameters of IG and ILS algorithms. In other words these parameters are learned by the differential evolution algorithm in order to guide the local search process. We also present the greedy randomized adaptive search procedure (GRASP) for the problem on hand. The performance of the populated local search algorithm with differential evolution algorithm and the GRASP heuristic is tested on Taillard's benchmark suite and compared to the best performing algorithms from the literature. Ultimately 90 out of 120 problem instances are further improved. © 2017 Elsevier B.V. All rights reserved.
dc.identifier.doi 10.1109/CEC.2015.7257235
dc.identifier.isbn 9781479974924
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-84963620165&doi=10.1109%2FCEC.2015.7257235&partnerID=40&md5=4460fdcf823410ab276336c193497f52
dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/9872
dc.language.iso English
dc.publisher Institute of Electrical and Electronics Engineers Inc.
dc.relation.ispartof IEEE Congress on Evolutionary Computation CEC 2015
dc.subject Blocking Flowshop, Constructive Heuristics, Iterated Greedy Algorithm, Iterated Local Search, Algorithms, Benchmarking, Design Of Experiments, Heuristic Algorithms, Learning Algorithms, Local Search (optimization), Optimization, Parameter Estimation, Problem Solving, Scheduling, Blocking Flowshop, Constructive Heuristics, Differential Evolution Algorithms, Greedy Randomized Adaptive Search Procedure, Iterated Greedy Algorithm, Iterated Local Search, Local Search Algorithm, Solution Representation, Evolutionary Algorithms
dc.subject Algorithms, Benchmarking, Design of experiments, Heuristic algorithms, Learning algorithms, Local search (optimization), Optimization, Parameter estimation, Problem solving, Scheduling, Blocking flowshop, constructive heuristics, Differential evolution algorithms, Greedy randomized adaptive search procedure, Iterated greedy algorithm, Iterated local search, Local search algorithm, Solution representation, Evolutionary algorithms
dc.title A populated local search with differential evolution for blocking flowshop scheduling problem
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gdc.description.endpage 2796
gdc.description.startpage 2789
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gdc.oaire.sciencefields 0211 other engineering and technologies
gdc.oaire.sciencefields 0202 electrical engineering, electronic engineering, information engineering
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gdc.opencitations.count 7
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oaire.citation.endPage 2796
oaire.citation.startPage 2789
person.identifier.scopus-author-id Tasgetiren- M. Fatih (6505799356), Pan- Quanke (15074237600), Kizilay- Damla (56021573000), Süer- Gürsel A. (6701905922)
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