A Directed Genetic Algorithm for global optimization
Within the framework of real-coded genetic algorithms, this paper proposes a directed genetic algorithm (DGA) that introduces a directed crossover operator and a directed mutation operator. The operation schemes of these operators borrow from the reflection and the expansion search mode of the Nelde...
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| Vydané v: | Applied mathematics and computation Ročník 219; číslo 14; s. 7348 - 7364 |
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| Jazyk: | English |
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15.03.2013
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| ISSN: | 0096-3003, 1873-5649 |
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| Abstract | Within the framework of real-coded genetic algorithms, this paper proposes a directed genetic algorithm (DGA) that introduces a directed crossover operator and a directed mutation operator. The operation schemes of these operators borrow from the reflection and the expansion search mode of the Nelder–Mead’s simplex method. First, the Taguchi method is employed to study the influence analysis of the parameters in the DGA. The results show that the parameters in the DGA have strong robustness for solving the global optimal solution. Then, several strategies are proposed to enhance the solution accuracy capability of the DGA. All of the strategies are applied to a set of 30/100-dimensional benchmark functions to prove their superiority over several genetic algorithms. Finally, a cantilevered beam design problem with constrained conditions is used as a practical structural optimization example for demonstrating the very good performance of the proposed method. |
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| AbstractList | Within the framework of real-coded genetic algorithms, this paper proposes a directed genetic algorithm (DGA) that introduces a directed crossover operator and a directed mutation operator. The operation schemes of these operators borrow from the reflection and the expansion search mode of the NelderaMeadas simplex method. First, the Taguchi method is employed to study the influence analysis of the parameters in the DGA. The results show that the parameters in the DGA have strong robustness for solving the global optimal solution. Then, several strategies are proposed to enhance the solution accuracy capability of the DGA. All of the strategies are applied to a set of 30/100-dimensional benchmark functions to prove their superiority over several genetic algorithms. Finally, a cantilevered beam design problem with constrained conditions is used as a practical structural optimization example for demonstrating the very good performance of the proposed method. Within the framework of real-coded genetic algorithms, this paper proposes a directed genetic algorithm (DGA) that introduces a directed crossover operator and a directed mutation operator. The operation schemes of these operators borrow from the reflection and the expansion search mode of the Nelder–Mead’s simplex method. First, the Taguchi method is employed to study the influence analysis of the parameters in the DGA. The results show that the parameters in the DGA have strong robustness for solving the global optimal solution. Then, several strategies are proposed to enhance the solution accuracy capability of the DGA. All of the strategies are applied to a set of 30/100-dimensional benchmark functions to prove their superiority over several genetic algorithms. Finally, a cantilevered beam design problem with constrained conditions is used as a practical structural optimization example for demonstrating the very good performance of the proposed method. |
| Author | Kuo, Hsin-Chuan Lin, Ching-Hai |
| Author_xml | – sequence: 1 givenname: Hsin-Chuan surname: Kuo fullname: Kuo, Hsin-Chuan email: khc@ntou.edu.tw, khc@mail.ntou.edu.tw – sequence: 2 givenname: Ching-Hai surname: Lin fullname: Lin, Ching-Hai email: lch850@gmail.com |
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| Cites_doi | 10.1109/CEC.2010.5586260 10.1007/s10898-008-9357-z 10.1016/0360-8352(96)00053-8 10.1002/(SICI)1097-0363(19990530)30:2<149::AID-FLD829>3.0.CO;2-B 10.1109/ICNN.1995.488968 10.1016/S0141-9331(02)00053-4 10.1093/comjnl/7.4.308 10.1109/4235.771163 10.1016/B978-0-08-094832-4.50018-0 10.1109/ICPR.2004.1334169 10.1016/S0377-2217(02)00401-0 10.1023/A:1008202821328 10.1023/A:1022452626305 10.1109/ICEC.1997.592275 10.1109/3477.484436 10.1016/S0045-7949(99)00125-X 10.1007/s00500-004-0377-4 10.1038/scientificamerican0300-72 10.1016/j.amc.2007.03.046 10.1109/CEC.2010.5586270 10.1016/B978-0-08-050684-5.50016-1 |
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| Keywords | Nelder–Mead’s simplex algorithm Global optimization Directed genetic algorithm |
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| SubjectTerms | Cantilever beams Directed genetic algorithm Genetic algorithms Global optimization Mathematical analysis Mathematical models Nelder–Mead’s simplex algorithm Operators Optimization Searching Strategy |
| Title | A Directed Genetic Algorithm for global optimization |
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