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Optimal Guidance for Accurate Lunar Soft Landing with Minimum Fuel Consumption using Model Predictive Static Programming

机译:使用模型预测静态编程的最低燃料消耗精确月球软降落的最佳指导

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In this paper the soft lunar landing with minimum fuel expenditure is formulated as a nonlinear optimal guidance problem. The realization of pinpoint soft landing with terminal velocity and position constraints is achieved using Model Predictive Static Programming (MPSP). The high accuracy of the terminal conditions is ensured as the formulation of the MPSP inherently poses final conditions as a set of hard constraints. The computational efficiency and fast convergence make the MPSP preferable for fixed final time onboard optimal guidance algorithm. It has also been observed that the minimum fuel requirement strongly depends on the choice of the final time (a critical point that is not given due importance in many literature). Hence, to optimally select the final time, a neural network is used to learn the mapping between various initial conditions in the domain of interest and the corresponding optimal flight time. To generate the training data set, the optimal final time is computed offline using a gradient based optimization technique. The effectiveness of the proposed method is demonstrated with rigorous simulation results.
机译:在本文中,具有最小燃料支出的软月球降落作为非线性最佳指导问题。使用模型预测静态编程(MPSP)实现了具有终端速度和位置约束的精确度和位置约束的确定。由于MPSP的配方固有地摆在一组硬度限制,因此确保了终端条件的高精度。计算效率和快速收敛使得MPSP优选用于固定的最佳最优引导算法。还有人观察到,最低燃料要求强烈取决于最终时间的选择(在许多文学中未赋予的关键点)。因此,为了最佳地选择最终时间,神经网络用于学习感兴趣域中的各种初始条件和相应的最佳飞行时间之间的映射。为了生成训练数据集,使用基于梯度的优化技术来脱机的最佳最终时间。用严格的模拟结果证明了所提出的方法的有效性。

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