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首页> 外文期刊>Journal of Electromagnetic Waves and Applications >Multi-objective optimization design of induction magnetometer based on improved chemical reaction algorithm
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Multi-objective optimization design of induction magnetometer based on improved chemical reaction algorithm

机译:基于改进的化学反应算法的感应磁力计多目标优化设计

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摘要

The optimal design of Induction Magnetometer (IM) is a prevalent and practical issue. A major combinatorial optimization problem is to design an IM so that it operates optimally in the sense of producing minimal equivalent input magnetic noise level and having the minimal total weight. In this paper, we constructed a desirability function that combines the above two conflicting criteria and proposed a novel Adaptive Chemical Reaction Optimization based on Stimulating Strategy (SE-ACRO) to address this multi-objective optimization problem. CRO is a newly developed evolutionary algorithm inspired by the interactions between molecules in chemical reactions. In the proposed SE-ACRO, on the basis of the original CRO, we further introduced probability selection mechanism and stimulating strategy to improve the performance of the algorithm. In addition, the adaptive mechanism was used for the adjustment of some parameters in CRO. Simulation results demonstrate that the proposed SE-ACRO algorithm is highly competitive and outperforms many other state-of-the-art evolutionary algorithms in the aspects of searching ability, robustness, and convergence rate. At the same time, the optimal trade-offs between the equivalent input magnetic noise level and the total weight of IM is achieved.
机译:感应磁力计(IM)的最佳设计是一种普遍和实际的问题。主要的组合优化问题是设计IM,使其在产生最小等效输入磁噪声水平并具有最小总重量的意义上进行最佳地运行。在本文中,我们构建了一种结合上述两个矛盾标准的可取性功能,并提出了一种基于刺激策略(SE-ACRO)来解决这种多目标优化问题的新型自适应化学反应优化。 CRO是一种新开发的进化算法,受到化学反应中分子之间的相互作用的启发。在拟议的SE-ACRO的基础上,在原来的CRO的基础上,我们进一步引入了概率选择机制和刺激策略来提高算法的性能。此外,自适应机构用于调整CRO中的一些参数。仿真结果表明,所提出的SE-ACRO算法在搜索能力,鲁棒性和收敛速度方面具有高竞争力和优于许多其他最先进的进化算法。同时,实现了等效输入磁噪声水平与IM的总重量之间的最佳权衡。

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