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A novel chaos danger model immune algorithm

机译:一种新型的混沌危险模型免疫算法

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摘要

Making use of ergodicity and randomness of chaos, a novel chaos danger model immune algorithm (CDMIA) is presented by combining the benefits of chaos and danger model immune algorithm (DMIA). To maintain the diversity of antibodies and ensure the performances of the algorithm, two chaotic operators are proposed. Chaotic disturbance is used for updating the danger antibody to exploit local solution space, and the chaotic regeneration is referred to the safe antibody for exploring the entire solution space. In addition, the performances of the algorithm are examined based upon several benchmark problems. The experimental results indicate that the diversity of the population is improved noticeably, and the CDMIA exhibits a higher efficiency than the danger model immune algorithm and other optimization algorithms.
机译:利用混沌的遍历性和随机性,结合混沌与危险模型免疫算法(DMIA)的优点,提出了一种新型的混沌危险模型免疫算法(CDMIA)。为了保持抗体的多样性并确保算法的性能,提出了两种混沌算子。混沌扰动用于更新危险抗体以利用局部溶液空间,而混沌再生被称为安全抗体以探索整个溶液空间。另外,基于几个基准问题检查了算法的性能。实验结果表明,种群的多样性得到了明显的改善,并且与危险模型免疫算法和其他优化算法相比,CDMIA具有更高的效率。

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  • 作者单位

    School of Mechanical, Electrical & Information Engineering, Shandong University (Weihai), Weihai 264209, China;

    School of Mechanical, Electrical & Information Engineering, Shandong University (Weihai), Weihai 264209, China;

    School of Mechanical, Electrical & Information Engineering, Shandong University (Weihai), Weihai 264209, China;

    School of Mechanical, Electrical & Information Engineering, Shandong University (Weihai), Weihai 264209, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Global optimization; Immune algorithm; Danger theory; Chaos;

    机译:全局优化免疫算法;危险理论;混沌;

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