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Elitism-based immune genetic algorithm and its application to optimization of complex multi-modal functions 被引量:4
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作者 谭冠政 周代明 +1 位作者 江斌 DIOUBATE Mamady I 《Journal of Central South University of Technology》 EI 2008年第6期845-852,共8页
A novel immune genetic algorithm with the elitist selection and elitist crossover was proposed, which is called the immune genetic algorithm with the elitism (IGAE). In IGAE, the new methods for computing antibody s... A novel immune genetic algorithm with the elitist selection and elitist crossover was proposed, which is called the immune genetic algorithm with the elitism (IGAE). In IGAE, the new methods for computing antibody similarity, expected reproduction probability, and clonal selection probability were given. IGAE has three features. The first is that the similarities of two antibodies in structure and quality are all defined in the form of percentage, which helps to describe the similarity of two antibodies more accurately and to reduce the computational burden effectively. The second is that with the elitist selection and elitist crossover strategy IGAE is able to find the globally optimal solution of a given problem. The third is that the formula of expected reproduction probability of antibody can be adjusted through a parameter r, which helps to balance the population diversity and the convergence speed of IGAE so that IGAE can find the globally optimal solution of a given problem more rapidly. Two different complex multi-modal functions were selected to test the validity of IGAE. The experimental results show that IGAE can find the globally maximum/minimum values of the two functions rapidly. The experimental results also confirm that IGAE is of better performance in convergence speed, solution variation behavior, and computational efficiency compared with the canonical genetic algorithm with the elitism and the immune genetic algorithm with the information entropy and elitism. 展开更多
关键词 immune genetic algorithm multi-modal function optimization evolutionary computation elitist selection elitist crossover
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ARTIFICIAL IMMUNE ALGORITHM OF MULTICELLULAR GROUP AND ITS CONVERGENCE
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作者 罗印升 李人厚 张维玺 《Journal of Pharmaceutical Analysis》 SCIE CAS 2005年第2期23-27,共5页
Objective To find out more extrema simultaneously including global optimum and multiple local optima existed in multi-modal functions. Methods Germinal center is the generator and selector of high-affinity B cells, a ... Objective To find out more extrema simultaneously including global optimum and multiple local optima existed in multi-modal functions. Methods Germinal center is the generator and selector of high-affinity B cells, a multicellular group's artificial immune algorithm was proposed based on the germinal center reaction mechanism of natural immune systems. Main steps of the algorithm were given, including hyper-mutation, selection, memory, similarity suppression and recruitment of B cells and the convergence of it was proved. Results The algorithm has been tested to optimize various multi-modal functions, and the simulation results show that the artificial immune algorithm proposed here can find multiple extremum of these functions with lower computational cost. Conclusion The algorithm is valid and can converge on the satisfactory solution set D with probability 1 and approach to global solution and many local optimal solutions existed. 展开更多
关键词 germinal center reaction B cell artificial immune algorithm multi-modal function
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免疫算法的改进 被引量:26
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作者 葛红 毛宗源 《计算机工程与应用》 CSCD 北大核心 2002年第14期47-49,192,共4页
免疫算法是在免疫系统识别多样性的启发下所设计出的一种新的多峰值函数的寻优算法。尽管免疫系统本身具有许多优良的计算特性,但已有的免疫算法模型却存在着不少缺陷,在已有的免疫算法的基础上,进行合理的改进,在保证群体的多样性性能... 免疫算法是在免疫系统识别多样性的启发下所设计出的一种新的多峰值函数的寻优算法。尽管免疫系统本身具有许多优良的计算特性,但已有的免疫算法模型却存在着不少缺陷,在已有的免疫算法的基础上,进行合理的改进,在保证群体的多样性性能的同时,加入了促使群体快速持续收敛的操作,并通过实验表明了改进算法具有更好的性能。 展开更多
关键词 免疫算法 baldwin效应 多峰值函数 计算机
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一种多模态函数优化的免疫算法 被引量:1
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作者 何珍梅 徐雪松 《南昌大学学报(工科版)》 CAS 2008年第1期83-86,共4页
结合免疫系统的研究成果,并基于克隆选择原理和免疫网络理论,设计并实现一种多模态免疫优化算法。算法的主要操作算子包括Baldwin效应设计、克隆选择、超变异及通过免疫网络调整对抗体相似性抑制等。通过对不同的多模态测试函数进行仿... 结合免疫系统的研究成果,并基于克隆选择原理和免疫网络理论,设计并实现一种多模态免疫优化算法。算法的主要操作算子包括Baldwin效应设计、克隆选择、超变异及通过免疫网络调整对抗体相似性抑制等。通过对不同的多模态测试函数进行仿真实验,证明了算法具有较强的多模态函数优化能力。 展开更多
关键词 免疫算法 多模态函数优化 免疫网络 baldwin效应
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基于新型免疫算法的多峰函数优化 被引量:4
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作者 傅清平 《计算机应用研究》 CSCD 北大核心 2011年第10期3678-3680,共3页
针对目前多峰函数优化问题较难找到全部局部最优解的情况,提出了改进的免疫优化求解方法。借鉴免疫系统的受体编辑操作、Baldwin效应,设计了相应的算子,增强了算法的学习能力,提高了算法的收敛速度。实验结果表明,本算法求解精度较高,... 针对目前多峰函数优化问题较难找到全部局部最优解的情况,提出了改进的免疫优化求解方法。借鉴免疫系统的受体编辑操作、Baldwin效应,设计了相应的算子,增强了算法的学习能力,提高了算法的收敛速度。实验结果表明,本算法求解精度较高,提高了多峰函数寻优的精度。 展开更多
关键词 免疫算法 多峰函数优化 baldwin效应 受体编辑
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