IMPROVING THE GEVGELIJA AERODROME PROJECT METHODOLOGY THROUGH THE EYE OF LOGIC OPTIMIZATION

Ana Lazarovska, Verica Dančevska, V. Manevska
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Abstract

The term equilibrium and the emergence of new technologies intended for aerodrome infrastructure development puts increasing pressure on the field of optimized traffic networks as crucial criteria for location selection. There is a constant need to improve optimization processes as one of the needed solutions for an equalized system. However, finding and implementing an optimization model is a potential requirement for traffic capacity for planned aerodromes where the intended capacity has the decision rule. In this paper, the authors show how the optimization model may be recast as a decision factor. We then take advantage of the recent advantage of recent advantages in Single European Sky ATM Research- SESAR reinforcement learning to build a project methodology that learns how the new aerodrome infrastructure can be born. Our design for the Gevgelija aerodrome has a number of desirable locations and it is decisional for one that generalizes many decision factors. Additionally, this methodology natively supports problems like this one, without the need to handle special cases. Finally, it is the same methodology that can be used to achieve different optimization objectives, e.g. aerodrome category and aerodrome development.
从逻辑优化的角度改进gevgelija机场项目方法论
“平衡”一词和机场基础设施发展新技术的出现,给优化交通网络领域带来了越来越大的压力,而优化交通网络是机场选址的关键标准。作为均衡系统的必要解决方案之一,不断需要改进优化过程。然而,寻找和实施优化模型是规划机场交通量的潜在要求,其中预期容量具有决策规则。在本文中,作者展示了如何将优化模型转换为决策因素。然后,我们利用单一欧洲天空ATM研究的最新优势- SESAR强化学习来建立一个项目方法,学习新的机场基础设施如何诞生。我们对Gevgelija机场的设计有许多理想的位置,它是决定性的,概括了许多决策因素。此外,这种方法本身就支持这样的问题,而不需要处理特殊情况。最后,同样的方法可以用于实现不同的优化目标,例如机场类别和机场发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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