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首页> 外文期刊>International journal of computational intelligence systems >PSOPB: A Two-population Particle Swarm Optimizer Mimicking Facultative Bio-parasitic Behavior
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PSOPB: A Two-population Particle Swarm Optimizer Mimicking Facultative Bio-parasitic Behavior

机译:PSOPB:模仿兼性生物寄生行为的两人口粒子群优化器。

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摘要

Inspired by the phenomenon of bio-parasitic behavior in natural ecosystem, this paper presents a novel particle swarm optimizer named PSOPB, in which particles are composed of the host and the parasite population. In the presented algorithm, the two populations mimic facultative bio-parasitic behaviour and exchange particles according to particles' fitness values sorted of each population in a certain number of iterations. The parasite mutation and the host immunity are also considered to tie it closer to bio-parasitic behaviour as well as improve the algorithm performance. In order to embody the law of "survival of the fittest" in biological evolution, the particles with poor fitness value in the host population are removed and replaced by the same numbers of the re-initialization particles to maintain constant population size. The experimental results of a set of 10 benchmark functions demonstrate the presented algorithm's efficacy.
机译:受到自然生态系统中生物寄生行为现象的启发,本文提出了一种名为PSOPB的新型粒子群优化器,其中的粒子由宿主和寄生虫种群组成。在提出的算法中,两个种群模拟兼性的生物寄生行为,并根据在一定数量的迭代中对每个种群排序的粒子适应度值来交换粒子。寄生虫突变和宿主免疫力也被认为使其更接近生物寄生虫行为,并提高了算法性能。为了在生物进化中体现“适者生存”的规律,将宿主种群中适应性较差的颗粒去除,并用相同数量的重新初始化颗粒代替,以保持种群恒定。一组10个基准函数的实验结果证明了该算法的有效性。

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