美国陆军航空兵空中运动作业的分配、利用和路线

Q3 Decision Sciences
Russell Nelson, Russell King, B. M. McConnell, Kristin Thoney-Barletta
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引用次数: 1

摘要

本研究的目的是建立一个空中行动计划模型,快速生成空中任务请求(AMR)分配和路线行动方案(COA),以最大限度地减少不支持的AMR、飞机利用率和路线成本。设计/方法/方法在本文中,美国陆军航空兵空中运动作战计划问题被建模为一个混合整数线性规划(MILP),作为拨乘问题(DARP)的扩展。本文还引入了一种启发式算法,作为单车辆DARP需求插入算法的扩展,以在战术上有用的时间段内生成可行解。MILP模型为小问题(低数量的amr和小型直升机机队)生成最佳解决方案。启发式算法几乎实时地为各种规模的问题(多达100个amr和10个直升机队规模)生成接近最优的可行解决方案。研究局限/启示由于MILP无法对大中型问题产生最优解,本研究在数值实验之外的启发式解质量评论方面受到限制。此外,作者还做了几个简化的假设,以概括飞机在整个飞行过程中的平均性能和能力。独创性/价值本研究首次通过单一公式解决了美国陆军航空兵空中运动作战规划问题,该公式结合了多个加油节点,通过优先级最小化不支持的需求,需求时间窗口,机队利用处罚,机队时间窗口以及最大持续时间和乘客乘坐时间限制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
US Army Aviation air movement operations assignment, utilization and routing
PurposeThe purpose of this study was to create an air movement operations planning model to rapidly generate air mission request (AMR) assignment and routing courses of action (COA) in order to minimize unsupported AMRs, aircraft utilization and routing cost.Design/methodology/approachIn this paper, the US Army Aviation air movement operations planning problem is modeled as a mixed integer linear program (MILP) as an extension of the dial-a-ride problem (DARP). The paper also introduces a heuristic as an extension of a single-vehicle DARP demand insertion algorithm to generate feasible solutions in a tactically useful time period.FindingsThe MILP model generates optimal solutions for small problems (low numbers of AMRs and small helicopter fleets). The heuristic generates near-optimal feasible solutions for problems of various sizes (up to 100 AMRs and 10 helicopter team fleet size) in near real time.Research limitations/implicationsDue to the inability of the MILP to produce optimal solutions for mid- and large-sized problems, this research is limited in commenting on the heuristic solution quality beyond the numerical experimentation. Additionally, the authors make several simplifying assumptions to generalize the average performance and capabilities of aircraft throughout a flight.Originality/valueThis research is the first to solve the US Army Aviation air movement operations planning problem via a single formulation that incorporates multiple refuel nodes, minimization of unsupported demand by priority level, demand time windows, aircraft team utilization penalties, aircraft team time windows and maximum duration and passenger ride time limits.
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来源期刊
CiteScore
0.90
自引率
0.00%
发文量
5
审稿时长
12 weeks
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