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Multi-objective Nondominated Sorting Invasive Weed Optimization Algorithm for the Permanent Magnet Brushless Direct Current Motor Design

机译:用于永磁无刷直流电电机设计的多目标非型分类侵入杂草优化算法

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In this paper, we proposed a new multi-objective optimization algorithm named Nondominated Sorting Invasive Weed Optimization (NSIWO) which was inspired from Nondominated Sorting Genetic Algorithm II(NSGAII) and Invasive Weed Optimization (IWO). Firstly, the fast nondominated sorting algorithm was used to rank the weeds, and the number of seeds produced by a weed increased linearly from highest rank to the lowest rank. Moreover, in order to get a good distribution and spread of Pareto-front, crowding distance was used for determining the seeds numbers produced by the weeds with the same rank. Finally, the maximum number of plant population of IWO was adjusted dynamically according to the number of nondominated solutions obtained during each iteration. Then the NSIWO approach was applied to the design of a Permanent Magnet Brushless Direct Current (PMBLDC) Motor of Underwater Unmanned Vehicle (UUV). The obtained results were compared with NSGA-II which is widely used in motor optimization. Numerical results in terms of convergence and spacing performance metrics indicates that the proposed multi-objective IWO scheme is capable of producing good solutions.
机译:在本文中,我们提出了一种名为NondoMinated Sorting杂草优化(NSIWO)的新的多目标优化算法,该算法是从非组织分类遗传算法II(NSGaii)和侵入性杂草优化(IWO)的启发。首先,使用快速的NondoMinated分选算法来对杂草进行排名,并且杂草产生的种子数量从最高等级线性增加到最低等级。此外,为了获得近端的良好分配和传播,挤出距离用于确定具有相同等级的杂草产生的种子数。最后,根据在每次迭代期间获得的未获得的未获得的溶液的数量,动态调整IWO的最大植物群。然后将NSIWO方法应用于水下无人驾驶车辆(UUV)的永磁无刷直流(PMBLDC)电机的设计。将得到的结果与NSGA-II进行了比较,其广泛用于电机优化。在收敛和间隔性能度量方面的数值结果表明,所提出的多目标IWO方案能够产生良好的解决方案。

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