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An Exact Algorithm for Agile Earth Observation Satellite Scheduling with Time-Dependent Profits

机译:具有时间依赖性利润的敏捷地球观测卫星调度的精确算法

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The scheduling of an Agile Earth Observation Satellite (AEOS) consists of selecting and scheduling a subset of possible targets for observation in order to maximize the collected profit related to the images while satisfying its operational constraints. In this problem, a set of candidate targets for observation is given, each with a time-dependent profit and a visible time window. The exact profit of a target depends on the start time of its observation, reaching its maximum at the midpoint of its visible time window. This time dependency stems from the fact that the image quality is determined by the look angle between the satellite and the target to be observed. We present an exact algorithm for the single-orbit scheduling for an AEOS considering the time-dependent profits. The algorithm is called Adaptive-directional Dynamic Programming with Decremental State Space Relaxation (ADP-DSSR). This algorithm is based on the dynamic programming approach for the Orienteering Problem with Time Windows (OPTW). Several algorithmic improvements are proposed to address the time-dependent profits. The proposed algorithm is evaluated based on extensive computational tests. The experimental results show that the algorithmic improvements significantly reduce the required computational time. The comparison between the proposed exact algorithm and a state-of-the-art heuristic illustrates that our algorithm can find the optimal solutions for sufficiently large instances within limited computational time. The results also show that our algorithm is capable of efficiently solving benchmark OPTW instances. (C) 2020 Elsevier Ltd. All rights reserved.
机译:敏捷地球观测卫星(AEOS)的调度包括选择和调度可能的目标的可能目标的子集,以便最大化与图像相关的收集的利润,同时满足其运行约束。在该问题中,给出了一组候选目标用于观察的候选目标,每个目标具有时间相关的利润和可见时间窗口。目标的确切利润取决于其观察的开始时间,在其可见时间窗口的中点达到其最大值。该时间依赖性源于图像质量由卫星和要观察到的目标之间的视野确定的事实。考虑到时间依赖的利润,我们为AEOS的单轨调度提出了一个精确的算法。该算法称为具有衰减状态空间松弛(ADP-DSSR)的自适应方向动态编程。该算法基于Time Windows(OPTW)的定向问题的动态编程方法。提出了几种算法改进以解决时间依赖的利润。基于广泛的计算测试评估所提出的算法。实验结果表明,算法改进显着降低了所需的计算时间。所提出的精确算法与最先进的启发式的比较说明了我们的算法可以找到有限计算时间内足够大的实例的最佳解决方案。结果还表明,我们的算法能够有效地解决基准OPTW实例。 (c)2020 elestvier有限公司保留所有权利。

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