arXiv:2601.11967eess.SYcs.CV2026-01被引 1

首个精确求解超敏捷卫星成像调度的约束规划模型。

A Constraint Programming Model for the Super-Agile Earth Observation Satellite Imaging Scheduling Problem

  • 构建约束规划模型,支持多方向、变时长成像和卫星间切换时间依赖。
  • 在新基准数据集上快速求解,计算时间远低于现有近似方法。
  • 适合需要高精度调度的遥感任务规划人员或航天系统研发者。

随着对卫星成像依赖度不断提升,新一代超敏捷地球观测卫星(SAEOS)带来了前所未有的成像灵活性。这类卫星的高度动态能力使观测任务调度面临新挑战:传统敏捷卫星调度方法无法处理可变成像时长与多指向性问题。尽管已有研究尝试应对,但超敏捷卫星成像调度问题(SAEOS-ISP)仍基本未被探索,且缺乏精确求解方法。本文首次提出针对SAEOS-ISP的精确约束规划模型,综合考虑灵活观测窗口、多指向成像及跨卫星序列依赖的过渡时间。在新构建的基准测试集上的计算实验表明,该模型能高效求解,计算耗时极短。结果还显示,相比当前主流的非精确方法,本方法具备更高的计算性能潜力。

原文摘要 · Abstract (English)

As the dependence on satellite imaging continues to grow, modern satellites have become increasingly agile, with the new generation, namely super-agile Earth observation satellites (SAEOS), providing unprecedented imaging flexibility. The highly dynamic capabilities of these satellites introduce additional challenges to the scheduling of observation tasks, as existing approaches for conventional agile satellites do not account for variable observation durations and multiple imaging directions. Although some efforts have been made in this regard, the SAEOS imaging scheduling problem (SAEOS-ISP) remains largely unexplored, and no exact approaches have yet been proposed. In this context, this study presents the first exact Constraint Programming formulation for the SAEOS-ISP, considering flexible observation windows, multiple pointing directions and sequence-dependent transition times across multiple satellites. Computational experiments on a newly generated benchmark set demonstrate that the model can be solved efficiently and within very short computational times. Moreover, the results also show that the proposed approach has the potential to achieve higher computational performance compared to the non-exact approaches that are currently considered state-of-the-art.

卫星调度约束规划遥感优化

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