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On the Optimization of Aerospace Plane Ascent Trajectory

机译:航空航天飞机上升轨迹的优化

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A hybrid heuristic optimization technique based on genetic algorithms and particle swarm optimization has been developed and tested for trajectory optimization problems with multi-constraints and a multi-objective cost function. The technique is used to calculate control settings for two types for ascending trajectories (constant dynamic pressure and minimum-fuel-minimum-heat) for a two-dimensional model of an aerospace plane. A thorough statistical analysis is done on the hybrid technique to make comparisons with both basic genetic algorithms and particle swarm optimization techniques with respect to convergence and execution time. Genetic algorithm optimization showed better execution time performance while particle swarm optimization showed better convergence performance. The hybrid optimization technique, benefiting from both techniques, showed superior robust performance compromising convergence trends and execution time.
机译:已经开发了一种基于遗传算法和粒子群算法的混合启发式优化技术,并针对具有多约束和多目标成本函数的轨迹优化问题进行了测试。该技术用于为航空航天飞机的二维模型计算两种上升轨迹的控制设置(恒定动压和最小燃料-最小热量)。对混合技术进行了彻底的统计分析,以就收敛性和执行时间与基本遗传算法和粒子群优化技术进行比较。遗传算法优化显示出更好的执行时间性能,而粒子群优化显示出更好的收敛性能。受益于这两种技术的混合优化技术表现出了出色的鲁棒性能,损害了收敛趋势和执行时间。

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