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A fuzzy approach to addressing uncertainty in Airport Ground Movement optimisation

机译:一种解决机场地面运动优化中不确定性的模糊方法

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摘要

Allocating efficient routes to taxiing aircraft, known as the Ground Movement problem, is increasingly important as air traffic levels continue to increase. If taxiways cannot be reliably traversed quickly, aircraft can miss valuable assigned slots at the runway or can waste fuel waiting for other aircraft to clear. Efficient algorithms for this problem have been proposed, but little work has considered the uncertainties inherent in the domain. This paper proposes an adaptive Mamdani fuzzy rule based system to estimate taxi times and their uncertainties. Furthermore, the existing Quickest Path Problem with Time Windows (QPPTW) algorithm is adapted to use fuzzy taxi time estimates. Experiments with simulated taxi movements at Manchester Airport, the third-busiest in the UK, show the new approach produces routes that are more robust, reducing delays due to uncertain taxi times by 10-20% over the original QPPTW.
机译:随着空中交通水平的不断提高,为滑行飞机分配有效的路线(称为地面运动问题)变得越来越重要。如果不能可靠地快速穿越滑行道,则飞机可能会错过跑道上宝贵的指定插槽,或者浪费燃油等待其他飞机清场。已经提出了用于该问题的有效算法,但是很少有工作考虑该领域固有的不确定性。本文提出了一种基于自适应Mamdani模糊规则的系统,用于估计滑行时间及其不确定性。此外,现有的带时间窗的最快路径问题(QPPTW)算法适用于使用模糊滑行时间估计。在英国第三繁忙的曼彻斯特机场进行的滑行模拟运动实验表明,这种新方法产生的航路更坚固,由于不确定的滑行时间而导致的延误比原始QPPTW减少了10-20%。

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