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Quantum-Behaved Brain Storm Optimization Approach to Solving Loney’s Solenoid Problem

机译:量子行为头脑风暴优化方法来解决Loney的螺线管问题

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摘要

Brain storm optimization (BSO) is a novel population-based swarm intelligence algorithm based on the human brainstorming process. BSO has been proven feasible and has been successfully applied to benchmark problems in the electromagnetic field. In this paper, inspired by the mechanism of quantum theories, a novel variant of BSO algorithm, called quantum-behaved BSO (QBSO), is proposed to solve an optimization problem modeled for Loney’s solenoid problem. The new mechanism improves the diversity of population and also utilizes the global information to generate the new individual. Simulation results show that QBSO has better ability to jump out of local optima and perform better compared with the basic BSO.
机译:头脑风暴优化(BSO)是一种基于人类头脑风暴过程的新颖的基于群体的群智能算法。 BSO已被证明是可行的,并且已成功应用于电磁场中的基准问题。本文受量子理论机制的启发,提出了一种新的BSO算法变​​体,称为量子行为BSO(QBSO),以解决针对Loney螺线管问题的优化问题。新机制改善了人口的多样性,还利用全球信息生成了新的个体。仿真结果表明,与基本的BSO相比,QBSO具有更好的跳出局部最优能力和更好的性能。

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