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Trajectories optimization of hypersonic vehicle based on a hybrid optimization algorithm of PSO and SQP

机译:基于PSO和SQP混合优化算法的超音速车辆轨迹优化

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We discuss the trajectory optimization problems in the climb segment of the hypersonic vehicle in this paper. First of all, we analyze the hypersonic vehicle model. The strength of the PSO algorithm (Particle Swarm Optimization, PSO) is its strong global optimization ability, but its local optimization ability is relatively weak. The SQP algorithm (Sequential Quadratic Programming, SQP) is quite the opposite, and it has high requirements of the initial trajectory. So we propose a hybrid optimization algorithm of PSO and SQP which combine the advantages of PSO and SQP, while improving the quality of the optimal trajectory.
机译:我们在本文中讨论了高超声速车辆攀登段中的轨迹优化问题。首先,我们分析了超声波车型。 PSO算法(粒子群优化,PSO)的强度​​是其强大的全球优化能力,但其本地优化能力相对较弱。 SQP算法(顺序二次编程,SQP)相反,它具有高要求初始轨迹。因此,我们提出了一种PSO和SQP的混合优化算法,它结合了PSO和SQP的优点,同时提高了最佳轨迹的质量。

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