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首页> 外文期刊>Universal Journal of Control and Automation >Gaussian Barebones Differential Evolution with Random-type Gaussian Mutation Strategy
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Gaussian Barebones Differential Evolution with Random-type Gaussian Mutation Strategy

机译:具有随机类型高斯变异策略的高斯准系统差分进化

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This study attempts to propose a random-type Gaussian mutation strategy to improve the solution accuracy of Gaussian barebones differential evolution (GBDE). The proposed Gaussian mutation strategy is not only parameter free, but also employed to enhance the population diversity and global searching ability of the original mutation strategy. The search performance of GBDE with the proposed mutation strategy is compared with two standard DEs (DE/rand/1 and DE/best/1), the original GBDE and its modified version in terms of solution accuracy. Simulation results on two real-world optimal control problems given in IEEE - CEC 2011 evolutionary algorithm competition demonstrate the effectiveness of the proposed GBDE algorithm.
机译:这项研究试图提出一种随机类型的高斯变异策略,以提高高斯准系统差分演化(GBDE)的求解精度。提出的高斯变异策略不仅没有参数,而且可以用来提高种群多样性和原始变异策略的全局搜索能力。将具有建议的突变策略的GBDE的搜索性能与两个标准DE(DE / rand / 1和DE / best / 1),原始GBDE及其修改版本的求解精度进行了比较。在IEEE-CEC 2011进化算法竞赛中给出的两个实际最优控制问题的仿真结果证明了所提出的GBDE算法的有效性。

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