Self-adaptive weight vector adjustment strategy for decomposition-based multi-objective differential evolution algorithm
In multi-objective and many-objective optimization, weight vectors are particularly crucial to the performance of decomposition-based optimization algorithms. The uniform weight vectors are not suitable for complex Pareto fronts (PFs), so it is necessary to improve the distribution of weight vectors...
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| Vydané v: | Soft computing (Berlin, Germany) Ročník 24; číslo 17; s. 13179 - 13195 |
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| Hlavní autori: | , , , , |
| Médium: | Journal Article |
| Jazyk: | English |
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Berlin/Heidelberg
Springer Berlin Heidelberg
01.09.2020
Springer Nature B.V |
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| ISSN: | 1432-7643, 1433-7479 |
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| Abstract | In multi-objective and many-objective optimization, weight vectors are particularly crucial to the performance of decomposition-based optimization algorithms. The uniform weight vectors are not suitable for complex Pareto fronts (PFs), so it is necessary to improve the distribution of weight vectors. Besides, the balance between convergence and diversity is a difficult issue as well in multi-objective optimization, and it becomes increasingly important with the augment of the number of objectives. To address these issues, a self-adaptive weight vector adjustment strategy for decomposition-based multi-objective differential evolution algorithm (AWDMODE) is proposed. In order to ensure that the guidance of weight vectors becomes accurate and effective, the adaptive adjustment strategy is introduced. This strategy distinguishes the shapes and adjusts weight vectors dynamically, which can ensure that the guidance of weight vectors becomes accurate and effective. In addition, a self-learning strategy is adopted to produce more non-dominated solutions and balance the convergence and diversity. The experimental results indicate that AWDMODE outperforms the compared algorithms on WFG suites test instances, and shows a great potential when handling the problems whose PFs are scaled with different ranges in each objective. |
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| AbstractList | In multi-objective and many-objective optimization, weight vectors are particularly crucial to the performance of decomposition-based optimization algorithms. The uniform weight vectors are not suitable for complex Pareto fronts (PFs), so it is necessary to improve the distribution of weight vectors. Besides, the balance between convergence and diversity is a difficult issue as well in multi-objective optimization, and it becomes increasingly important with the augment of the number of objectives. To address these issues, a self-adaptive weight vector adjustment strategy for decomposition-based multi-objective differential evolution algorithm (AWDMODE) is proposed. In order to ensure that the guidance of weight vectors becomes accurate and effective, the adaptive adjustment strategy is introduced. This strategy distinguishes the shapes and adjusts weight vectors dynamically, which can ensure that the guidance of weight vectors becomes accurate and effective. In addition, a self-learning strategy is adopted to produce more non-dominated solutions and balance the convergence and diversity. The experimental results indicate that AWDMODE outperforms the compared algorithms on WFG suites test instances, and shows a great potential when handling the problems whose PFs are scaled with different ranges in each objective. |
| Author | Fan, Rui Zhang, Jinlu Li, Xin Wei, Lixin Fan, Zheng |
| Author_xml | – sequence: 1 givenname: Rui surname: Fan fullname: Fan, Rui organization: Institute of Electrical Engineering, Yanshan University – sequence: 2 givenname: Lixin orcidid: 0000-0002-4520-3069 surname: Wei fullname: Wei, Lixin email: wlx2000@ysu.edu.cn organization: Institute of Electrical Engineering, Yanshan University – sequence: 3 givenname: Xin surname: Li fullname: Li, Xin organization: Faculty of Information Technology, Beijing University of Technology – sequence: 4 givenname: Jinlu surname: Zhang fullname: Zhang, Jinlu organization: Institute of Electrical Engineering, Yanshan University – sequence: 5 givenname: Zheng surname: Fan fullname: Fan, Zheng organization: Luoyang Ruize Petrochemical Engineering Co., Ltd |
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| Keywords | Evolutionary computations Multi-objective optimization Decomposition Many-objective optimization Weight vector |
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| SubjectTerms | Algorithms Artificial Intelligence Computational Intelligence Control Convergence Decomposition Engineering Evolutionary algorithms Evolutionary computation Mathematical Logic and Foundations Mechatronics Methodologies and Application Multiple objective analysis Optimization Pareto optimization Robotics |
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| Title | Self-adaptive weight vector adjustment strategy for decomposition-based multi-objective differential evolution algorithm |
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