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Real-parameter unconstrained optimization based on enhanced fitness-adaptive differential evolution algorithm with novel mutation

机译:基于增强的健身 - 自适应差分算法的实际参数无约束优化

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摘要

This paper presents enhanced fitness-adaptive differential evolution algorithm with novel mutation (EFADE) for solving global numerical optimization problems over continuous space. A new triangular mutation operator is introduced. It is based on the convex combination vector of the triplet defined by the three randomly chosen vectors and the difference vectors between the best, better and the worst individuals among the three randomly selected vectors. Triangular mutation operator helps the search for better balance between the global exploration ability and the local exploitation tendency as well as enhancing the convergence rate of the algorithm through the optimization process. Besides, two novel, effective adaptation schemes are used to update the control parameters to appropriate values without either extra parameters or prior knowledge of the characteristics of the optimization problem. In order to verify and analyze the performance of EFADE, numerical experiments on a set of 28 test problems from the CEC2013 benchmark for 10, 30 and 50 dimensions, including a comparison with 12 recent DE-based algorithms and six recent evolutionary algorithms, are executed. Experimental results indicate that in terms of robustness, stability and quality of the solution obtained, EFADE is significantly better than, or at least comparable to state-of-the-art approaches with outstanding performance.
机译:本文提高了具有新型突变(EFADE)的增强的健身 - 自适应差分算法,用于解决连续空间的全局数值优化问题。介绍了一种新的三角形突变算子。它基于由三个随机选择的载体的三个随机所选择的向量定义的三联体的凸组合矢量,并且在三种随机选择的载体中最好的,更好和最糟糕的个体之间的差异载体。三角形突变算子有助于搜索全球勘探能力与局部开发能力之间的更好平衡,以及通过优化过程提高算法的收敛速度。此外,还用于将控制参数更新为适当的值的两个新颖,有效的自适应方案,而无论是额外的参数还是先前了解优化问题的特征。为了验证和分析EFADE的性能,执行来自CEC2013基准的一组28个测试问题的数值实验,包括10,30和50个维度,包括与12个最近的基于算法和六个进化算法的比较。实验结果表明,在所获得的稳健性,稳定性和溶液的质量方面,EFADE明显优于或至少与具有出色性能的最先进的方法。

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