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Probabilistic properties of fitness-based quasi-reflection in evolutionary algorithms

机译:进化算法中基于适应度的准反射的概率性质

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Evolutionary algorithms (EAs) excel in optimizing systems with a large number of variables. Previous mathematical and empirical studies have shown that opposition-based algorithms can improve EA performance. We review existing opposition-based algorithms and introduce a new one. The proposed algorithm is named fitness-based quasi-reflection and employs the relative fitness of solution candidates to generate new individuals. We provide the probabilistic analysis to prove that among all the opposition-based methods that we investigate, fitness-based quasi-reflection has the highest probability of being closer to the solution of an optimization problem. We support our theoretical findings via Monte Carlo simulations and discuss the use of different reflection weights. We also demonstrate the benefits of fitness-based quasi-reflection on three state-of-the-art EAs that have competed at IEEE CEC competitions. The experimental results illustrate that fitness-based quasi-reflection enhances EA performance, particularly on problems with more challenging solution spaces. We found that competitive DE (CDE) which was ranked tenth in CEC 2013 competition benefited the most from opposition. CDE with fitness-based quasi-reflection improved on 21 out of the 28 problems in the CEC 2013 test suite and achieved 100% success rate on seven more problems than CDE. (C) 2015 Elsevier Ltd. All rights reserved.
机译:进化算法(EA)擅长优化具有大量变量的系统。先前的数学和经验研究表明,基于对立的算法可以提高EA性能。我们回顾了现有的基于对立的算法,并介绍了一种新算法。该算法被称为基于适应度的准反射,并利用候选解​​的相对适应度来生成新个体。我们提供了概率分析,以证明在我们研究的所有基于反对派的方法中,基于适应度的准反射具有最接近优化问题解的最高概率。我们通过蒙特卡洛模拟支持我们的理论发现,并讨论了不同反射权重的使用。我们还展示了基于适应度的准反射对参加IEEE CEC竞赛的三个最新EA的好处。实验结果表明,基于适应度的准反射可增强EA性能,尤其是在解决方案空间更具挑战性的问题上。我们发现,在CEC 2013竞争中排名第十的竞争性DE(CDE)受益最大。在CEC 2013测试套件的28个问题中,具有基于适应度的准反射的CDE改善了21个问题,并且在七个问题上的成功率比CDE高100%。 (C)2015 Elsevier Ltd.保留所有权利。

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