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Average convergence rate estimation of clonal selection algorithm:

机译:克隆选择算法的平均收敛速度估计:

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Considering that average convergence rate estimation of clonal selection algorithms is a difficult problem and is still in its infancy, this article researches the convergence rate of an elitist clonal selection algorithm. It derives the best individual transition probability matrix from the directional transition probability of best individuals in algorithm populations and constructs matrix norms that meet certain requirements to resolve difficulties in calculating the matrix caused by large algorithm populations in practical applications, thereby proposing a simple and effective method of estimating average convergence rate of the algorithm. In addition, simulation experiments are performed to validate universality and validity of the estimation method.
机译:考虑到克隆选择算法的平均收敛速度估计是一个难题,目前仍处于起步阶段,本文研究了精英克隆选择算法的收敛速度。它从算法种群中最佳个体的有向转移概率中得出最佳个体转移概率矩阵,并构建满足一定要求的矩阵范数,以解决实际应用中由大量算法种群导致的矩阵计算困难,从而提出一种简单有效的方法估计算法的平均收敛速度。另外,进行仿真实验以验证估计方法的通用性和有效性。

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