约束非线性动态优化的离散空间变分法

Yixin Chen, B. Wah
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引用次数: 7

摘要

我们提出了新的优势关系,可以显著加快离散时间和空间的非线性约束动态优化问题的求解过程。我们首先证明了动态规划中的路径优势不能应用于跨越多个阶段的一般约束,并且在连续空间中最优控制理论中以欧拉-拉格朗日条件形式提出的节点优势不能推广到离散空间。对于不会导致局部最优路径的剪枝状态,本文首次以问题每个阶段的局部鞍点条件的形式提出了有效的优势关系。通过利用这些优势关系,我们开发了高效的搜索算法,其复杂性尽管是指数级的,但与不使用这些关系相比,其基数要小得多。最后,我们在一些航天器规划和调度基准上验证了我们的算法的性能,与现有的ASPEN规划器相比,我们的算法在CPU时间和求解质量上有了显著的改进。
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Calculus of variations in discrete space for constrained nonlinear dynamic optimization
We propose new dominance relations that can speed up significantly the solution process of nonlinear constrained dynamic optimization problems in discrete time and space. We first show that path dominance in dynamic programming cannot be applied when there are general constraints that span across multiple stages, and that node dominance, in the form of Euler-Lagrange conditions developed in optimal control theory in continuous space, cannot be extended to that in discrete space. This paper is the first to propose efficient dominance relations, in the form of local saddle-point conditions in each stage of a problem, for pruning states that will not lead to locally optimal paths. By utilizing these dominance relations, we develop efficient search algorithms whose complexity, despite exponential, has a much smaller base as compared to that without using the relations. Finally, we demonstrate the performance of our algorithms on some spacecraft planning and scheduling benchmarks and show significant improvements in CPU time and solution quality as compared to those obtained by the existing ASPEN planner.
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