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首页> 外文期刊>Applied Soft Computing >Constrained differential evolution with multiobjective sorting mutation operators for constrained optimization
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Constrained differential evolution with multiobjective sorting mutation operators for constrained optimization

机译:带多目标排序变异算子的约束差分演化算法

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Differential evolution (DE) is a simple and powerful evolutionary algorithm for global optimization. DE with constraint handling techniques, named constrained differential evolution (CDE), can be used to solve constrained optimization problems (COPs). In existing CDEs, the parents are randomly selected from the current population to produce trial vectors. However, individuals with fitness and diversity information should have more chances to be selected. This study proposes a new CDE framework that uses nondominated sorting mutation operator based on fitness and diversity information, named MS-CDE. In MS-CDE, firstly, the fitness of each individual in the population is calculated according to the current population situation. Secondly, individuals in the current population are ranked according to their fitness and diversity contribution. Lastly, parents in the mutation operators are selected in proportion to their rankings based on fitness and diversity. Thus, promising individuals with better fitness and diversity are more likely to be selected as parents. The MS-CDE framework can be applied to most CDE variants. In this study, the framework is applied to two popular representative CDE variants, (mu+lambda)-CDE and ECHT-DE. Experiment results on 24 benchmark functions from CEC'2006 and 18 benchmark functions from CEC'2010 show that the proposed framework is an effective approach to enhance the performance of CDE algorithms. (C) 2015 Elsevier B.V. All rights reserved.
机译:差分进化(DE)是用于全局优化的一种简单而强大的进化算法。具有约束处理技术的DE(称为约束差分演化(CDE))可用于解决约束优化问题(COP)。在现有的CDE中,从当前种群中随机选择父母,以产生试验载体。但是,具有适应性和多样性信息的人应该有更多的机会被选中。这项研究提出了一个新的CDE框架,该框架使用基于适应性和多样性信息的非支配排序变异算子,称为MS-CDE。在MS-CDE中,首先,根据当前人口状况计算人口中每个人的适应度。其次,根据当前人口的适合度和多样性贡献对其进行排名。最后,根据适应度和多样性,按照排名对变异算子的父母进行选择。因此,具有更好适应性和多样性的有前途的人更有可能被选为父母。 MS-CDE框架可以应用于大多数CDE变体。在这项研究中,该框架适用于两种流行的代表性CDE变体(mu + lambda)-CDE和ECHT-DE。对CEC'2006的24个基准函数和CEC'2010的18个基准函数的实验结果表明,该框架是提高CDE算法性能的有效方法。 (C)2015 Elsevier B.V.保留所有权利。

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