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A new method based on LPP and NSGA-II for multiobjective robust collaborative optimization

机译:基于LPP和NSGA-II的多目标鲁棒协同优化新方法

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摘要

The multiobjective robust collaborative optimization framework consists of optimization both at the system and autonomous subsystem levels. Linear physical programming is used in the system level optimization, which avoids the difficulty in choosing the multidimensional Pareto set. The non-dominated sorting genetic algorithm (NSGA-II) is used in the subsystem optimization with physical objectives. The interdisciplinary incompatibility function and physical objectives have different priority levels. At the first priority level, the best individual should be in the feasible region of the subsystem. At the second priority level, the interdisciplinary incompatibility function of the best individual should be no more than the feasibility threshold. The physical objectives are improved after the achievement of the above levels. A method for producing initial population with feasibility and diversity is proposed to improve the calculation efficiency and accuracy of the subsystem optimization at the first priority level. A method for setting dynamic feasibility threshold is proposed for the non-dominated sorting to help the physical objectives to obtain better solutions at the second priority level. Finally, the results of the speed reducer show that the presented method is efficient.
机译:多目标鲁棒协作优化框架包括系统级和自治子系统级的优化。线性物理编程用于系统级优化,从而避免了选择多维Pareto集的困难。非支配排序遗传算法(NSGA-II)用于具有物理目标的子系统优化。跨学科的不兼容功能和物理目标具有不同的优先级。在第一优先级,最好的个人应该在子系统的可行区域内。在第二优先级上,最佳个人的跨学科不兼容功能应不超过可行性阈值。达到上述水平后,身体目标得到改善。提出了一种具有可行性和多样性的初始种群生成方法,以提高子系统优先级优先级的计算效率和准确性。提出了一种用于非支配排序的设置动态可行性阈值的方法,以帮助物理目标在第二优先级上获得更好的解决方案。最后,减速器的结果表明该方法是有效的。

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