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A Novel Hybrid Clonal Selection Algorithm with Combinatorial Recombination and Modified Hypermutation Operators for Global Optimization

机译:一种新型混合克隆选择算法,具有组合重组和改进的全局优化超岩体运营商

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摘要

Artificial immune system is one of the most recently introduced intelligence methods which was inspired by biological immune system. Most immune system inspired algorithms are based on the clonal selection principle, known as clonal selection algorithms (CSAs). When coping with complex optimization problems with the characteristics of multimodality, high dimension, rotation, and composition, the traditional CSAs often suffer from the premature convergence and unsatisfied accuracy. To address these concerning issues, a recombination operator inspired by the biological combinatorial recombination is proposed at first. The recombination operator could generate the promising candidate solution to enhance search ability of the CSA by fusing the information from random chosen parents. Furthermore, a modified hypermutation operator is introduced to construct more promising and efficient candidate solutions. A set of 16 common used benchmark functions are adopted to test the effectiveness and efficiency of the recombination and hypermutation operators. The comparisons with classic CSA, CSA with recombination operator (RCSA), and CSA with recombination and modified hypermutation operator (RHCSA) demonstrate that the proposed algorithm significantly improves the performance of classic CSA. Moreover, comparison with the state-of-the-art algorithms shows that the proposed algorithm is quite competitive.
机译:人工免疫系统是最近引入的智能方法之一,这是由生物免疫系统启发的。大多数免疫系统启发算法基于克隆选择原理,称为克隆选择算法(CSA)。当应对复杂的优化问题时,具有多模,高尺寸,旋转和组成的特点,传统的CSA通常遭受过早收敛和不满足的准确性。为了解决这些问题,首先提出了由生物组合重组的启发的重组操作员。重组操作员可以产生有希望的候选解决方案,以通过融合来自随机选择的父母的信息来增强CSA的搜索能力。此外,引入了改进的超抵制运算符来构建更有前途和有效的候选解决方案。采用一组16个常见的使用基准功能来测试重组和超岩体运营商的有效性和效率。具有复合操作员(RCSA)和CSA的经典CSA,CSA的比较和具有重组和改进的高级态度(RHCSA)的CSA证明了所提出的算法显着提高了经典CSA的性能。此外,与最先进的算法的比较表明,所提出的算法是非常有竞争力的。

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