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MDE: Differential evolution with merit-based mutation strategy

机译:MDE:基于优异的突变策略的差分演变

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Currently Differential Evolution (DE) is arguably the most powerful and widely used stochastic population-based real-parameter optimization algorithm. There have been variant DE-based algorithms in the literature since its introduction in 1995. This paper proposes a novel merit-based mutation strategy for DE (MDE); it is based on the performance of each individual in the past and current generations to improve the solution accuracy. MDE is compared with three commonly used mutation strategies on 28 standard numerical benchmark functions introduced in the IEEE Congress on Evolutionary Computation (CEC-2013) special session on real parameter optimization. Experimental results confirm that MDE outperforms the classical DE mutation strategies for most of the test problems in terms of convergence speed and solution accuracy.
机译:目前差分演变(DE)可以说是最强大,最广泛使用的随机群体的实际参数优化算法。自1995年引进以来,文献中存在变体的基于算法。本文提出了一种新的基于优异的突变策略(MDE);它是基于过去的每个人的性能,以及目前的一代,以提高解决方案准确性。将MDE与三种常用的突变策略进行比较,在IEEE国会上引入了IEEE大会上的28种标准数值基准函数(CEC-2013)特殊会议上的实际参数优化。实验结果证实,MDE在收敛速度和解决方案准确性方面对大多数测试问题表现出经典的突变策略。

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