A risk-constrained multi-stage decision making approach to the architectural analysis of planetary missions

Y. Kuwata, M. Pavone, J. Balaram
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引用次数: 10

Abstract

This paper presents a novel risk-constrained multi-stage decision making approach to the architectural analysis of planetary rover missions. In particular, focusing on a 2018 Mars rover concept, which was considered as part of a potential Mars Sample Return campaign, we model the entry, descent, and landing (EDL) phase and the rover traverse phase as four sequential decision-making stages. The problem is to find a sequence of divert and driving maneuvers so that the rover drive is minimized and the probability of a mission failure (e.g., due to a failed landing) is below a user-specified bound. By solving this problem for several different values of the model parameters (e.g., divert authority), this approach enables rigorous, accurate and systematic trade-offs for the EDL system vs. the mobility system, and, more in general, cross-domain trade-offs for the different phases of a space mission. The overall optimization problem can be seen as a chance-constrained dynamic programming problem, with the additional complexity that 1) in some stages the disturbances do not have any probabilistic characterization, and 2) the state space is extremely large (i.e, hundreds of millions of states for trade-offs with high-resolution Martian maps). To this purpose, we solve the problem by performing an unconventional combination of average and minimax cost analysis and by leveraging high efficient computation tools from the image processing community. Preliminary trade-off results are presented.
行星任务结构分析的风险约束多阶段决策方法
提出了一种基于风险约束的多阶段决策方法,用于行星漫游者任务的结构分析。我们特别关注2018年火星探测器概念,该概念被认为是潜在的火星样本返回活动的一部分,我们将进入、下降和着陆(EDL)阶段和探测器穿越阶段建模为四个连续的决策阶段。问题是要找到一系列的转向和驱动机动,使火星车的驱动最小,任务失败的概率(例如,由于失败的着陆)低于用户指定的界限。通过解决模型参数的几个不同值(例如,转移权限)的问题,该方法可以对EDL系统与机动系统进行严格、准确和系统的权衡,并且更一般地说,可以对空间任务的不同阶段进行跨域权衡。整体优化问题可以看作是一个机会约束的动态规划问题,具有额外的复杂性:1)在某些阶段,干扰没有任何概率特征,2)状态空间非常大(即,与高分辨率火星地图进行权衡的数亿个状态)。为此,我们通过执行平均和最小最大成本分析的非常规组合以及利用来自图像处理社区的高效计算工具来解决问题。给出了初步的权衡结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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