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A New Self-adaption Differential Evolution Algorithm Based Component Model

机译:一种新的自适应差分进化算法的组件模型

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摘要

Finding a solution to constrained optimization problems (COPs) with differential evolution (DE) is a promising research issue. This paper proposes a novel algorithm to improve the original mutation and selection operators of DE. It explored some benefits from the component model and self-adaption mechanism, while solving the constrained optimization problems. Six benchmark functions about constraint problems are used in the experiment to evaluate the performance of the proposed algorithm. The experiment results demonstrate its effectiveness compared with other the current state-of-the art approaches in constraint optimization such as KM, SAFF and ISR.
机译:寻找具有差分进化(DE)的约束优化问题(COP)的解决方案是一个有前途的研究问题。本文提出了一种新的算法来改善DE的原始变异和选择算子。在解决约束优化问题的同时,它探索了组件模型和自适应机制的一些好处。实验中使用了六个关于约束问题的基准函数来评估该算法的性能。实验结果证明,与其他当前最先进的约束优化方法(例如KM,SAFF和ISR)相比,它的有效性。

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