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AuthorHe, Xuan
AuthorPan, Quan-Ke
AuthorGao, Liang
AuthorWang, Ling
AuthorSuganthan, Ponnuthurai Nagaratnam
Available date2025-01-20T05:12:02Z
Publication Date2023
Publication NameIEEE Transactions on Evolutionary Computation
ResourceScopus
Identifierhttp://dx.doi.org/10.1109/TEVC.2021.3115795
ISSN1089778X
URIhttp://hdl.handle.net/10576/62267
AbstractThe flowshop sequence-dependent group scheduling problem (FSDGSP) with the production efficiency measures has been extensively studied due to its wide industrial applications. However, energy efficiency indicators are often ignored in the literature. This article considers the FSDGSP to minimize makespan, total flow time, and total energy consumption, simultaneously. After the problem-specific knowledge is extracted, a mixed-integer linear programming model and a critical path-based accelerated evaluation method are proposed. Since the FSDGSP includes multiple coupled subproblems, a greedy cooperative co-evolutionary algorithm (GCCEA) is designed to explore the solution space in depth. Meanwhile, a random mutation operator and a greedy energy-saving strategy are employed to adjust the processing speeds of machines to obtain a potential nondominated solution. A large number of experimental results show that the proposed algorithm significantly outperforms the existing classic multiobjective optimization algorithms, which is due to the usage of problem-related knowledge.
SponsorThis work was supported in part by the National Science Foundation of China under Grant 61973203 and Grant 61873328; in part by the National Natural Science Fund for Distinguished Young Scholars of China under Grant 51825502; and in part by the Program of Shanghai Academic/Technology Research Leader under Grant 21XD1401000.
Languageen
PublisherInstitute of Electrical and Electronics Engineers Inc.
SubjectCooperative co-evolutionary algorithm (CCEA)
energy efficient
flowshop sequence-dependent group scheduling
multiobjective optimization problem (MOP)
problem-specific knowledge
TitleA Greedy Cooperative Co-Evolutionary Algorithm With Problem-Specific Knowledge for Multiobjective Flowshop Group Scheduling Problems
TypeArticle
Pagination430-444
Issue Number3
Volume Number27
dc.accessType Full Text


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