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Frankenstein's PSO: A Composite Particle Swarm Optimization Algorithm

机译:科学怪人的粒子群优化算法:一种复合粒子群优化算法

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During the last decade, many variants of the original particle swarm optimization (PSO) algorithm have been proposed. In many cases, the difference between two variants can be seen as an algorithmic component being present in one variant but not in the other. In the first part of the paper, we present the results and insights obtained from a detailed empirical study of several PSO variants from a component difference point of view. In the second part of the paper, we propose a new PSO algorithm that combines a number of algorithmic components that showed distinct advantages in the experimental study concerning optimization speed and reliability. We call this composite algorithm Frankenstein's PSO in an analogy to the popular character of Mary Shelley's novel. Frankenstein's PSO performance evaluation shows that by integrating components in novel ways effective optimizers can be designed.
机译:在过去的十年中,已经提出了原始粒子群优化(PSO)算法的许多变体。在许多情况下,两个变体之间的差异可以看作是一个变体中存在但另一个不存在的算法组件。在本文的第一部分中,我们介绍了从组件差异的角度对几种PSO变体进行详细的经验研究得出的结果和见解。在本文的第二部分中,我们提出了一种新的PSO算法,该算法结合了许多算法组件,这些组件在有关优化速度和可靠性的实验研究中显示出明显的优势。我们称这种复合算法为科学怪人的PSO,类似于玛丽·雪莱小说的流行特征。科学怪人的PSO性能评估表明,通过以新颖的方式集成组件,可以设计出有效的优化器。

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