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Learning Optimal Control and Dynamical Structure of Global Trajectory Search Problems with Diffusion Models

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arxiv 2410.02976 v2 pith:QNT7TZCY submitted 2024-10-03 cs.LG cs.SYeess.SYmath.OC

classification cs.LGcs.SYeess.SYmath.OC
keywords searchglobalproblemproblemsstructurescontroldiffusiondynamical
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Spacecraft trajectory design is a global search problem, where previous work has revealed specific solution structures that can be captured with data-driven methods. This paper explores two global search problems in the circular restricted three-body problem: hybrid cost function of minimum fuel/time-of-flight and transfers to energy-dependent invariant manifolds. These problems display a fundamental structure either in the optimal control profile or the use of dynamical structures. We build on our prior generative machine learning framework to apply diffusion models to learn the conditional probability distribution of the search problem and analyze the model's capability to capture these structures.

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  1. Global Search of Optimal Spacecraft Trajectories using Amortization and Deep Generative Models

    math.OC 2024-12 conditional novelty 5.0 of 10

    An amortized CVAE-plus-LSTM generator produces warm-start guesses that more than double solver convergence success and cut median solve time by about 2.5 to 5 times for held-out thrust levels in an Earth-Moon low-thru...

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