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A new differential evolution algorithm for complex constrained optimization problems

机译:复杂约束优化问题的新差分演化算法

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This paper presents a new differential evolution (DE) to address complex multi-modal function optimization problems. DE is a novel evolutionary approach capable of handling non-differentiable, nonlinear and multi-modal objective functions. Previous studies have shown that DE is an efficient, effective and robust evolutionary algorithm, but sometimes it is inefficient to solve complicated multi-modal problems. In order to improve its search efficiency, a local search procedure is designed and an improved DE (IDE) based on uniform design is proposed. Its performance is tested using some well known benchmark problems. Numerical results show the usefulness of our method.
机译:本文提出了一种新的差分演进(DE)来解决复杂的多模态函数优化问题。 DE是一种能够处理非可分辨性,非线性和多模态目标功能的新型进化方法。以前的研究表明,DE是一种高效,有效且稳健的进化算法,但有时解决复杂的多模态问题效率低下。为了提高其搜索效率,提出了基于均匀设计的本地搜索程序和改进的DE(IDE)。它的性能是使用一些众所周知的基准问题进行测试。数值结果显示了我们方法的有用性。

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