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检索条件"主题词=multi-objective evolutionary algorithms"
320 条 记 录,以下是11-20 订阅
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Convergence performance comparison of quantum-inspired multi-objective evolutionary algorithms
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COMPUTERS & MATHEMATICS WITH APPLICATIONS 2009年 第11-12期57卷 1843-1854页
作者: Li, Zhiyong Rudolph, Guenter Li, Kenli Hunan Univ Sch Comp & Commun Changsha 410082 Hunan Peoples R China Univ Dortmund Lehrstuhl Algorithm Engn D-44221 Dortmund Germany
In recent research, we proposed a general framework of quantum-inspired multi-objective evolutionary algorithms (QMOEA) and gave one of its sufficient convergence conditions to the Pareto optimal set. In this paper, t... 详细信息
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Simultaneous topology, shape, and size optimization of trusses, taking account of uncertainties using multi-objective evolutionary algorithms
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ENGINEERING WITH COMPUTERS 2019年 第2期35卷 721-740页
作者: Techasen, Teerapol Wansasueb, Kittinan Panagant, Natee Pholdee, Nantiwat Bureerat, Sujin Khon Kaen Univ Dept Mech Engn Sustainable & Infrastruct Res & Dev Ctr Fac Engn Khon Kaen 40002 Thailand
This paper proposes the design of trusses using simultaneous topology, shape, and size design variables and reliability optimization. objective functions consist of structural mass and reliability, while the probabili... 详细信息
来源: 评论
A Co-evolutionary Scheme for multi-objective evolutionary algorithms Based on ε-Dominance
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IEEE ACCESS 2019年 7卷 18267-18283页
作者: Menchaca-Mendez, Adriana Montero, Elizabeth Miguel Antonio, Luis Zapotecas-Martinez, Saul Coello Coello, Carlos A. Riff, Maria-Cristina Univ Nacl Autonoma Mexico ENES Tecnol Informac Ciencias Campus Morelia Morelia 58190 Michoacan Mexico Univ Andres Bello Fac Ingn Vina Del Mar 2531015 Chile Inst Politecn Nacl Ctr Invest & Estudios Avanzados Dept Computac Ciudad De Mexico 07360 Mexico Univ Autonoma Metropolitana Unidad Cuajimalpa Dept Matemat Aplicadas & Sistemas Ciudad De Mexico 05348 Mexico Univ Tecn Federico Santa Maria Dept Informat Valparaiso 2390123 Chile
Convergence and diversity of solutions play an essential role in the design of multi-objective evolutionary algorithms (MOEAs). Among the available diversity mechanisms, the epsilon-dominance has shown a proper balanc... 详细信息
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Hybridization of multi-objective evolutionary algorithms and artificial neural networks for optimizing the performance of electrical drives
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ENGINEERING APPLICATIONS OF ARTIFICIAL INTELLIGENCE 2013年 第8期26卷 1781-1794页
作者: Zavoianu, Alexandru-Ciprian Bramerdorfer, Gerd Lughofer, Edwin Silber, Siegfried Amrhein, Wolfgang Klement, Erich Peter Johannes Kepler Univ Linz Fuzzy Log Lab Linz Hagenberg Dept Knowledge Based Math Syst Linz Austria Johannes Kepler Univ Linz Inst Elect Drives & Power Elect Linz Austria Austrian Ctr Competence Mechatron ACCM Linz Austria
Performance optimization of electrical drives implies a lot of degrees of freedom in the variation of design parameters, which in turn makes the process overly complex and sometimes impossible to handle for classical ... 详细信息
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An alternative hypervolume-based selection mechanism for multi-objective evolutionary algorithms
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SOFT COMPUTING 2017年 第4期21卷 861-884页
作者: Menchaca-Mendez, Adriana Coello Coello, Carlos A. CINVESTAV IPN Evolutionary Computat Grp Dept Computac Ave IPN 2508 San Pedro Zacatenco Mexico City 07300 DF Mexico
In this paper, we are interested in selection mechanisms based on the hypervolume indicator with a particular emphasis on the mechanism used in an improved version of the S metric selection evolutionary multi-objectiv... 详细信息
来源: 评论
Natural laminar flow airfoil shape design at transonic regimes with multi-objective evolutionary algorithms
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PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING 2019年 第3期233卷 991-999页
作者: Chen, Yongbin Tang, Zhili Nanjing Univ Aeronaut & Astronaut Coll Aerosp Engn 29 Yudao St Nanjing 210016 Jiangsu Peoples R China
The natural laminar flow airfoil shape design at transonic regime is solved using multi-objective evolutionary algorithms in this paper. A shock wave control bump is used to reduce wave drag of natural laminar flow ai... 详细信息
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EvoFolio: a portfolio optimization method based on multi-objective evolutionary algorithms
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NEURAL COMPUTING & APPLICATIONS 2024年 第13期36卷 7221-7243页
作者: Guarino, Alfonso Santoro, Domenico Grilli, Luca Zaccagnino, Rocco Balbi, Mario Univ Salerno Dept Comp Sci Via Giovanni Paolo 2130 Fisciano SA Italy Univ Bari Dept Econ & Finance Largo Abbazia S Scolast I-70124 Bari BA Italy Univ Foggia Dept Econ Management & Terr Via Zara 11 I-71121 Foggia FG Italy
Optimal portfolio selection-composing a set of stocks/assets that provide high yields/returns with a reasonable risk-has attracted investors and researchers for a long time. As a consequence, a variety of methods and ... 详细信息
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Maximizing submodular or monotone approximately submodular functions by multi-objective evolutionary algorithms
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ARTIFICIAL INTELLIGENCE 2019年 275卷 279-294页
作者: Qian, Chao Yu, Yang Tang, Ke Yao, Xin Zhou, Zhi-Hua Nanjing Univ Natl Key Lab Novel Software Technol Nanjing 210023 Jiangsu Peoples R China Southern Univ Sci & Technol Shenzhen Key Lab Computat Intelligence Dept Comp Sci & Engn Shenzhen 518055 Peoples R China
evolutionary algorithms (EAs) are a kind of nature-inspired general-purpose optimization algorithm, and have shown empirically good performance in solving various real-word optimization problems. During the past two d... 详细信息
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Simultaneous optimization of design and maintenance for systems using multi-objective evolutionary algorithms and discrete simulation
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SOFT COMPUTING 2023年 第24期27卷 19213-19246页
作者: Cacereno, Andres Greiner, David Galvan, Blas Univ Las Palmas de Gran Canaria ULPGC Inst Univ Sistemas Inteligentes & Aplicac Numer In Campus Univ Tafira Las Palmas Gran Canaria 35017 Las Palmas Spain
When projecting and building new industrial facilities, getting integrated design alternatives and maintenance strategies are of critical importance to achieve the physical assets optimal performance, which is needed ... 详细信息
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A survey on multi-objective evolutionary algorithms for many-objective problems
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COMPUTATIONAL OPTIMIZATION AND APPLICATIONS 2014年 第3期58卷 707-756页
作者: von Luecken, Christian Baran, Benjamin Brizuela, Carlos Univ Nacl Asuncion Fac Politecn San Lorenzo Paraguay Univ Nacl Asuncion San Lorenzo Paraguay CISESE Ensenada 22860 Baja California Mexico
multi-objective evolutionary algorithms (MOEAs) are well-suited for solving several complex multi-objective problems with two or three objectives. However, as the number of conflicting objectives increases, the perfor... 详细信息
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