Restarted Iterated Pareto Greedy algorithm for multi-objective flowshop scheduling problems
Multi-objective optimisation problems have seen a large impulse in the last decades. Many new techniques for solving distinct variants of multi-objective problems have been proposed. Production scheduling, as with other operations management fields, is no different. The flowshop problem is among the...
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| Vydáno v: | Computers & operations research Ročník 38; číslo 11; s. 1521 - 1533 |
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| Médium: | Journal Article |
| Jazyk: | angličtina |
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Kidlington
Elsevier Ltd
01.11.2011
Elsevier Pergamon Press Inc |
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| ISSN: | 0305-0548, 1873-765X, 0305-0548 |
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| Abstract | Multi-objective optimisation problems have seen a large impulse in the last decades. Many new techniques for solving distinct variants of multi-objective problems have been proposed. Production scheduling, as with other operations management fields, is no different. The flowshop problem is among the most widely studied scheduling settings. Recently, the Iterated Greedy methodology for solving the single-objective version of the flowshop problem has produced state-of-the-art results. This paper proposes a new algorithm based on Iterated Greedy technique for solving the multi-objective permutation flowshop problem. This algorithm is characterised by an effective initialisation of the population, management of the Pareto front, and a specially tailored local search, among other things. The proposed multi-objective Iterated Greedy method is shown to outperform other recent approaches in comprehensive computational and statistical tests that comprise a large number of instances with objectives involving makespan, tardiness and flowtime. Lastly, we use a novel graphical tool to compare the performances of stochastic Pareto fronts based on Empirical Attainment Functions. |
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| AbstractList | Multi-objective optimisation problems have seen a large impulse in the last decades. Many new techniques for solving distinct variants of multi-objective problems have been proposed. Production scheduling, as with other operations management fields, is no different. The flowshop problem is among the most widely studied scheduling settings. Recently, the Iterated Greedy methodology for solving the single-objective version of the flowshop problem has produced state-of-the-art results. This paper proposes a new algorithm based on Iterated Greedy technique for solving the multi-objective permutation flowshop problem. This algorithm is characterised by an effective initialisation of the population, management of the Pareto front, and a specially tailored local search, among other things. The proposed multi-objective Iterated Greedy method is shown to outperform other recent approaches in comprehensive computational and statistical tests that comprise a large number of instances with objectives involving makespan, tardiness and flowtime. Lastly, we use a novel graphical tool to compare the performances of stochastic Pareto fronts based on Empirical Attainment Functions. [PUBLICATION ABSTRACT] Multi-objective optimisation problems have seen a large impulse in the last decades. Many new techniques for solving distinct variants of multi-objective problems have been proposed. Production scheduling, as with other operations management fields, is no different. The flowshop problem is among the most widely studied scheduling settings. Recently, the Iterated Greedy methodology for solving the single-objective version of the flowshop problem has produced state-of-the-art results. This paper proposes a new algorithm based on Iterated Greedy technique for solving the multi-objective permutation flowshop problem. This algorithm is characterised by an effective initialisation of the population, management of the Pareto front, and a specially tailored local search, among other things. The proposed multi-objective Iterated Greedy method is shown to outperform other recent approaches in comprehensive computational and statistical tests that comprise a large number of instances with objectives involving makespan, tardiness and flowtime. Lastly, we use a novel graphical tool to compare the performances of stochastic Pareto fronts based on Empirical Attainment Functions. |
| Author | Minella, Gerardo Ciavotta, Michele Ruiz, Rubén |
| Author_xml | – sequence: 1 givenname: Gerardo surname: Minella fullname: Minella, Gerardo email: mgerar@iti.upv.es – sequence: 2 givenname: Rubén surname: Ruiz fullname: Ruiz, Rubén email: rruiz@eio.upv.es – sequence: 3 givenname: Michele surname: Ciavotta fullname: Ciavotta, Michele email: mciavotta@iti.upv.es |
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| Keywords | Iterated Greedy Scheduling Flowshop Multi-objective Local search Population management Pareto optimum Permutation Empirical method Multiobjective programming Makespan Delay Production management Statistical test Greedy algorithm Flow shop Impulse |
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| SubjectTerms | Algorithms Applied sciences Decision theory. Utility theory Exact sciences and technology Flowshop Greedy algorithms Inventory control, production control. Distribution Iterated Greedy Iterative methods Job shops Mathematical problems Multi-objective Operational research and scientific management Operational research. Management science Operations management Operations research Optimization algorithms Pareto optimality Pareto optimum Permutations Production scheduling Scheduling Scheduling, sequencing Searching State of the art Studies |
| Title | Restarted Iterated Pareto Greedy algorithm for multi-objective flowshop scheduling problems |
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