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首页> 外文期刊>Journal of intelligent & fuzzy systems: Applications in Engineering and Technology >A self-adaptive differential evolution algorithm with an external archive for unconstrained optimization problems
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A self-adaptive differential evolution algorithm with an external archive for unconstrained optimization problems

机译:带有外部档案的自适应微分进化算法,用于无约束优化问题

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摘要

Differential evolution algorithm (DE) has yielded promising results for solving nonlinear, non-differentiable and multi-modal optimization issues. Due to its simple structure, fast convergence and strong robustness, DEhas received increasing attention and wide application in a variety of fields. We propose a novel differential evolution approach (SE-DE) which uses an external archive for opposition-based learning, by this way, more high quality solutions can be selected for candidate solutions. In addition, the mutation factor (F) is adaptively controlled based on the success of offspring/trial solutions generated. An optimization factor a is proposed to select the crossover strategy, a combination of binomial and exponential crossover can effectively balance the exploration and exploitation ability of the algorithm. The performance of SE-DE is compared with the other five DE algorithms including DE, SADE, ODE, NDE and MDE-pBX. The comparison is carried out for a set of 30-, 50- and 100-dimensional test functions from CEC2005. The results show that our algorithm is better than, or at least comparable to, the algorithms from other literature.
机译:差分演化算法(DE)在解决非线性,不可微和多模态优化问题方面已经取得了可喜的成果。由于其简单的结构,快速的收敛性和强大的鲁棒性,DE受到了越来越多的关注,并在各个领域得到了广泛的应用。我们提出了一种新颖的差分进化方法(SE-DE),该方法使用外部档案库进行基于对立的学习,从而可以为候选解决方案选择更高质量的解决方案。另外,基于产生的后代/试验溶液的成功性,自适应地控制突变因子(F)。提出了一个优化因子α来选择交叉策略,二项和指数交叉的结合可以有效地平衡算法的探索和开发能力。将SE-DE的性能与其他五种DE算法(包括DE,SADE,ODE,NDE和MDE-pBX)进行了比较。对CEC2005中的一组30维,50维和100维测试函数进行了比较。结果表明,我们的算法优于或至少可与其他文献的算法相提并论。

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