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Preference-Based Evolutionary Algorithm for Airport Runway Scheduling and Ground Movement Optimisation

机译:基于偏好的机场跑道调度与地面运动优化进化算法

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As airports all over the world are becoming more congested together with stricter environmental regulations put in place, research on optimisation of airport surface operations started to consider both time and fuel related objectives. However, as both time and fuel can have a monetary cost associated with them, this information can be utilised as preference during the optimisation to guide the search process to a region with the most cost efficient solutions. In this paper, we solve the integrated optimisation problem combining runway scheduling and ground movement problem by using a multi-objective evolutionary framework. The proposed evolutionary algorithm is based on modified crowding distance and outranking relation which considers cost of delay and price of fuel. Moreover, the preferences are expressed in a such way, that they define a certain range in prices reflecting uncertainty. The preliminary results of computational experiments with data from a major airport show the efficiency of the proposed approach.
机译:随着世界各地的机场变得越来越拥挤,同时制定了更加严格的环境法规,优化机场地面运营的研究开始考虑与时间和燃油相关的目标。但是,由于时间和燃料都可能具有货币成本,因此可以在优化期间将此信息用作首选项,以将搜索过程引导到具有最具成本效益的解决方案的区域。在本文中,我们通过使用多目标进化框架解决了将跑道调度与地面运动问题相结合的综合优化问题。提出的进化算法基于修正的拥挤距离和排位关系,其中考虑了延误成本和燃料价格。此外,偏好以这样的方式表达,即它们定义了反映不确定性的一定价格范围。利用来自主要机场的数据进行的计算实验的初步结果表明了该方法的有效性。

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