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An adaptive large neighborhood search heuristic for solving a robust gate assignment problem

机译:自适应大邻域搜索启发式算法,用于解决鲁棒的门分配问题

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摘要

With the rapid growth of air traffic demand, airport capacity becomes a major bottleneck within the air traffic control systems. Minor disturbances may have a large impact on the airport surface operations due to the overly tight schedules, which results in frequent gate conflict occurrences during airport's daily operations. A robust gate schedule that is resilient to disturbances is essential for an airport to maintain a good performance. Unfortunately, there is no efficient expert system available for the airport managers to simultaneously consider the traditional cost (the aircraft tow cost, transfer passenger cost) and the robustness. To fill this gap, in this paper, we extend the traditional gate assignment problem and consider a wider scope, in which the traditional costs and the robustness are simultaneously considered. A mathematical model is first built, which leads to a complex non-linear model. To efficiently solve this model, an adaptive large neighborhood search (ALNS) algorithm is then designed. We novelly propose multiple local search operators by exploring the characteristics of the gate assignment problem. The comparison with the benchmark algorithm shows the competitiveness of proposed algorithm in solving the considered problem. Moreover, the proposed methodology also has great potential from the practical perspective since it can be easily integrated into current expert systems to help airport managers make satisfactory decisions. (C) 2017 Elsevier Ltd. All rights reserved.
机译:随着空中交通需求的快速增长,机场容量成为空中交通管制系统中的主要瓶颈。由于时间安排过紧,轻微的干扰可能会对机场地面运行产生重大影响,从而导致在机场的日常运营中频繁发生登机口冲突。能够抵御干扰的稳健的登机时间表对于机场保持良好的性能至关重要。不幸的是,没有高效的专家系统可供机场管理人员同时考虑传统成本(飞机拖车成本,中转旅客成本)和稳定性。为了填补这一空白,在本文中,我们扩展了传统的门分配问题,并考虑了更广泛的范围,其中同时考虑了传统成本和鲁棒性。首先建立数学模型,这导致了复杂的非线性模型。为了有效地解决此模型,然后设计了自适应大邻域搜索(ALNS)算法。通过探索门分配问题的特征,我们新颖地提出了多个本地搜索运算符。与基准算法的比较显示了所提出算法在解决所考虑问题上的竞争力。此外,从实际角度出发,所提出的方法还具有很大的潜力,因为它可以轻松地集成到当前的专家系统中,以帮助机场经理做出令人满意的决定。 (C)2017 Elsevier Ltd.保留所有权利。

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