论文标题
Dyson Ring的奖学金:ACT与朋友的结果和GTOC的方法11
The Fellowship of the Dyson Ring: ACT&Friends' Results and Methods for GTOC 11
论文作者
论文摘要
戴森球体是包围恒星的假设巨型结构,以收获大部分能量输出。在第11版的GTOC挑战赛期间,参与者的任务是与先驱戴森结构的建造有关的复杂轨迹计划,这是一个由十二个电台制成的HeliePentric戒指。为此,我们开发了几种新方法,这些方法可以通过机器学习,组合优化,计划和调度以及进化优化合成技术,从而有效地集成到全自动管道中。这些包括机器学习的传输时间估计器,改善已建立的Edelbaum近似,从而更好地告知懒惰的种族树搜索,以识别和收集车站的高度到达质量;一系列最佳基于最佳的低头性转移到通过间接优化技术计算出的所有站点,利用了系统的主息周期性;以及修改后的匈牙利调度算法,该算法利用进化技术来安排所有转移可能性的质量平衡时间表。我们详细描述了管道的步骤,特别关注我们的方法如何相互受益。最后,我们概述和分析了团队,ACT和朋友的最终解决方案,该解决方案在GTOC 11挑战赛中排名第二。
Dyson spheres are hypothetical megastructures encircling stars in order to harvest most of their energy output. During the 11th edition of the GTOC challenge, participants were tasked with a complex trajectory planning related to the construction of a precursor Dyson structure, a heliocentric ring made of twelve stations. To this purpose, we developed several new approaches that synthesize techniques from machine learning, combinatorial optimization, planning and scheduling, and evolutionary optimization effectively integrated into a fully automated pipeline. These include a machine learned transfer time estimator, improving the established Edelbaum approximation and thus better informing a Lazy Race Tree Search to identify and collect asteroids with high arrival mass for the stations; a series of optimally-phased low-thrust transfers to all stations computed by indirect optimization techniques, exploiting the synodic periodicity of the system; and a modified Hungarian scheduling algorithm, which utilizes evolutionary techniques to arrange a mass-balanced arrival schedule out of all transfer possibilities. We describe the steps of our pipeline in detail with a special focus on how our approaches mutually benefit from each other. Lastly, we outline and analyze the final solution of our team, ACT&Friends, which ranked second at the GTOC 11 challenge.