Solving 0-1 Bi-Objective Multi-dimensional Knapsack Problems Using Binary Genetic Algorithm

dc.contributor.author Ozgur Kabadurmus
dc.contributor.author M. Fatih Tasgetiren
dc.contributor.author Hande Oztop
dc.contributor.author Mehmet Serdar Erdoğan
dc.contributor.author Tasgetiren, M. Fatih
dc.contributor.author Erdogan, M. Serdar
dc.contributor.author Oztop, Hande
dc.contributor.author Kabadurmus, Ozgur
dc.date.accessioned 2025-10-06T17:50:45Z
dc.date.issued 2021
dc.description.abstract The multi-dimensional knapsack problem (MDKP) is a well-known NP-hard problem in combinatorial optimization. As it has various real-life applications the MDKP has been intensively studied in the literature. On the other hand far too little attention has been paid to the multi-objective version of the MDKP. In this chapter we consider the bi-objective multi-dimensional knapsack problem (BOMDKP). We propose a Binary Genetic Algorithm (BGA) with an external archive for the problem. Our proposed BGA algorithm also employs a binary local search. The non-dominated solution sets are obtained for various bi-objective benchmark instances with 100 250 500 and 750 items by employing the proposed BGA. Then the performance of the BGA is compared with other multi-objective algorithms from the literature i.e. MOEA/D and MOFPA. Furthermore it is observed that the Pareto-optimal solution set provided by Zitzler and Laumans for 500 items and 2 knapsacks includes 30 dominated solutions. Also the Pareto-optimal solutions for the scenario with 750 items are not reported in Zitzler and Thiele [43]. Hence the true Pareto-optimal solution sets are found for all benchmark problem instances using Improved Augmented Epsilon Constraint (AUGMECON2) method. The non-dominated solution sets of the BGA MOEA/D and MOFPA are compared with the Pareto-optimal solution sets for all test instances. The computational results indicate that the proposed BGA is more effective to solve the BOMDKP than the best-performing algorithms from the literature. © 2020 Elsevier B.V. All rights reserved.
dc.identifier.doi 10.1007/978-3-030-58930-1_4
dc.identifier.isbn 9783031963100, 9783642034510, 9783540768029, 9783642364051, 9783031852510, 9783540959717, 9783031534447, 9783642054402, 9783642327254, 9783030949099
dc.identifier.issn 1860949X, 18609503
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dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/9098
dc.identifier.uri https://doi.org/10.1007/978-3-030-58930-1_4
dc.language.iso English
dc.publisher Springer Science and Business Media Deutschland GmbH
dc.relation.ispartof Studies in Computational Intelligence
dc.rights info:eu-repo/semantics/closedAccess
dc.source Studies in Computational Intelligence
dc.title Solving 0-1 Bi-Objective Multi-dimensional Knapsack Problems Using Binary Genetic Algorithm
dc.type Book Part
dspace.entity.type Publication
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gdc.description.department
gdc.description.departmenttemp [Kabadurmus O.] Department of International Logistics Management, Yasar University, Izmir, Turkey; [Tasgetiren M.F.] Department of Mechanical and Industrial Engineering, Qatar University, Doha, Qatar; [Oztop H.] Department of Industrial Engineering, Yasar University, Izmir, Turkey; [Erdogan M.S.] Department of International Logistics Management, Yasar University, Izmir, Turkey
gdc.description.endpage 67
gdc.description.publicationcategory Kitap Bölümü - Uluslararası
gdc.description.startpage 51
gdc.description.volume 906
gdc.identifier.openalex W3112099120
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gdc.virtual.author Taşgetiren, Mehmet Fatih
oaire.citation.endPage 67
oaire.citation.startPage 51
person.identifier.scopus-author-id Kabadurmus- Ozgur (24604956200), Tasgetiren- M. Fatih (6505799356), Oztop- Hande (57194232319), Erdoğan- Mehmet Serdar (57195507610)
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