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Autonomous Planning of Multigravity-Assist Trajectories with Deep Space Maneuvers Using a Differential Evolution Approach

机译:利用微分进化方法的深空机动多重力辅助弹道自主规划

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摘要

The biologically inspired concept of hidden genes has been recently introduced in genetic algorithms to solve optimization problems where the number of design variables is variable. In multigravity-assist trajectories, the hidden genes genetic algorithms demonstrated success in searching for the optimal number of swing-bys and the optimal number of deep space maneuvers. Previous investigations in the literature for multigravity-assist trajectory planning problems show that the standard differential evolution is more effective than the standard genetic algorithms. This paper extends the concept of hidden genes to differential evolution. The hidden genes differential evolution is implemented in optimizing multigravity-assist space trajectories. Case studies are conducted, and comparisons to the hidden genes genetic algorithms are presented in this paper.
机译:最近,遗传算法引入了生物学启发的隐藏基因概念,以解决设计变量数量可变的优化问题。在多重力辅助轨迹中,隐藏基因遗传算法在寻找最佳摆动次数和最佳深空机动次数方面取得了成功。文献中对多重力辅助轨迹规划问题的先前研究表明,标准差分进化比标准遗传算法更有效。本文将隐藏基因的概念扩展至差异进化。隐藏的基因差异进化是通过优化多重力辅助空间轨迹来实现的。进行了案例研究,并与隐藏基因遗传算法进行了比较。

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  • 来源
    《International journal of aerospace engineering》 |2013年第2013期|12.1-12.11|共11页
  • 作者

    Ossama Abdelkhalik;

  • 作者单位

    Mechanical Engineering-Engineering Mechanics Department, Michigan Technological University, 815 R.L. Smith Building, 1400 Townsend Dr., Houghton, Mine 49931-1295, USA;

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  • 正文语种 eng
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