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Adaptive Particle Swarm Optimization with Dynamic Population and Its Application to Constrained Engineering Design Optimization

机译:具有动态群体的自适应粒子群优化及其在约束工程设计优化中的应用

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This paper presents a variant of the particle swarm optimization (PSO) that we call the adaptive particle swarm optimization with dynamic population (DP-APSO), which adopts a novel dynamic population (DP) strategy whereby the population size of swarm can vary with the evolutionary process. The DP strategy enables the population size to increase when the swarm converges and decrease when the swarm disperses. Experiments were conducted on two well-studied constrained engineering design optimization problems. The results demonstrate better performance of the DP-APSO in solving these engineering design optimization problems when compared with two other evolutionary computation algorithms.
机译:本文介绍了粒子群优化(PSO)的变体,我们称之为动态群体(DP-APSO)调用自适应粒子群优化,该群体(DP-APSO)采用新型动态人口(DP)策略,群体的人口规模可能因进化过程。 DP策略使人口大小能够在群群当群体分散时收敛和减少时增加。在两次研究的受限工程设计优化问题上进行了实验。结果表明,与另外两种进化计算算法相比,DP-APSO在解决这些工程设计优化问题方面的性能更好。

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