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Composite mission variable formulation for real-time mission planning

机译:用于实时任务规划的复合任务变量公式

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摘要

In this thesis, we create a comprehensive model and efficient solution technique for generating air operations plans. Previous air operations models have fallen short in at least one of the following areas: routing. real-time re-planning of aircraft. problem size capability, plan generation speed. and optimal packaging of aircraft. The purpose of the Composite Mission Variable Decomposition (CMVD) approach is to plan and re-plan air operations for a real conflict as it unfolds. Previous model shortcomings were the result of two main reasons: the models were developed for other purposes (typically weapons studies). or developers could not create techniques that can efficiently generate plans while including the listed areas. The application of conventional optimization modeling to an operations problem that includes aspects such as routing and real-time re-planning forms a model that has millions of constraints and a weak linear programming relaxation. The Composite Mission Variable MNodeils the first step in overcoming the above shortcomings because it greatly decreases the number of constraints in the optimization model. and the linear programming relaxation provides tight bounds. The Composite Mission Variable Model combines multiple air operations planning decisions into a composite mission variable. Many complex constraints that are explicitly included in a conventional model are implicitly enforced in the composite mission variables. We apply price coordinated decomposition to generate the composite mission variables. Price coordination reduces the number of variables in the Composite Mission Variable Model and allows for parallel processing of composite mission variable generation. CMVD creates air operations plans in minutes for scenarios with thousands of targets. while including important capabilities such as routing and re-planning of aircraft in air. CMVD is tested in simulated conflicts and its performance validated by comparisons with a heuristic approach for generating plans.
机译:在本文中,我们创建了用于生成空中作战计划的综合模型和有效的解决方案技术。先前的空中作战模型在以下至少一个领域中不足:航路。飞机的实时重新计划。问题大小能力,计划生成速度。和飞机的最佳包装。复合任务可变分解(CMVD)方法的目的是针对发生的实际冲突计划和重新计划空中作战。先前的模型缺陷是两个主要原因的结果:模型是为其他目的而开发的(通常是武器研究)。否则开发人员无法创建可以有效地生成计划(同时包括所列区域)的技术。将常规优化模型应用于包括路由和实时重新规划等方面的操作问题,形成了具有数百万个约束和弱线性规划松弛的模型。复合任务变量MNode克服了上述缺点的第一步,因为它大大减少了优化模型中的约束数量。线性规划松弛提供了紧密的界限。复合任务变量模型将多个空中作战计划决策组合为一个复合任务变量。复合任务变量中隐含地强制执行常规模型中明确包含的许多复杂约束。我们应用价格协调分解来生成复合任务变量。价格协调减少了复合任务变量模型中变量的数量,并允许并行处理复合任务变量生成。 CMVD可在数分钟内为具有数千个目标的方案创建空中运营计划。同时包括重要的功能,例如空中飞行器的路由和重新计划。在模拟冲突中对CMVD进行了测试,并通过与用于生成计划的启发式方法进行比较来验证其性能。

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