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A design methodology for evolutionary air transportation networks.

机译:进化航空运输网络的设计方法。

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The air transportation demand at large hubs in the U.S. is anticipated to double in the near future. Current runway construction plans at selected airports can relieve some capacity and delay problems, but many are doubtful that this solution is sufficient to accommodate the anticipated demand growth in the National Airspace System (NAS). With the worsening congestion problem, it is imperative to seek alternative solutions other than costly runway constructions. In this respect, many researchers and organizations have been building models and performing analyses of the NAS. However, the complexity and size of the problem results in an overwhelming task for transportation system modelers. This research seeks to compose an active design algorithm for an evolutionary airline network model so as to include network specific control properties. An airline network designer, referred to as a network architect, can use this tool to assess the possibilities of gaining more capacity by changing the network configuration.;Since the Airline Deregulation Act of 1978, the airline service network has evolved into a distinct Hub-and-Spoke (H&S) network. Enplanement demand on the H&S network is the sum of Origin-Destination (O-D) demand and transfer demand. Even though the flight or enplanement demand is a function of O-D demand and passenger routings on the airline network, the distinction between enplanement and O-D demand is not often made. Instead, many demand forecast practices in current days are based on scale-ups from the enplanements, which include the demand to and from transferring network hubs. Based on this research, it was found that the current demand prediction practice can be improved by dissecting enplanements further into smaller pieces of information. As a result, enplanement demand is decomposed into intrinsic and variable parts. The proposed intrinsic demand model is based on the concept of 'true' O-D demand which includes the direction of each round trip travel. The result from using true O-D concept reveals the socioeconomic functional roles of airports on the network. Linear trends are observed for both the produced and attracted demand from the data. Therefore, this approach is expected to provide more accurate prediction capability.;With the intrinsic demand model in place, the variable part of the demand is modeled on an air transportation network model, which is built with accelerated evolution scheme. The accelerated evolution scheme was introduced to view the air transportation network as an evolutionary one instead of a parametric one. The network model takes in intrinsic demand data before undergoing an evolution path to generate a target network. The results from the network model suggest that air transportation networks can be modeled using evolutionary structure and it was possible to generate a closely emulated NAS. A dehubbing scenario study of Lambert-St. Louis International Airport demonstrated the prediction capability of the proposed network model. The overall process from intrinsic demand modeling and evolutionary network modeling is unique and it is highly beneficial for simulating active control of air transportation networks.
机译:预计在不久的将来,美国大型枢纽的航空运输需求将增加一倍。当前选定机场的跑道建设计划可以缓解某些容量和延误问题,但是许多人怀疑这种解决方案是否足以满足国家空域系统(NAS)预期的需求增长。随着交通拥堵问题的恶化,除了昂贵的跑道建设外,还必须寻求其他解决方案。在这方面,许多研究人员和组织一直在建立NAS的模型并进行分析。但是,问题的复杂性和规模导致运输系统建模人员的工作量很大。本研究旨在为演化的航空公司网络模型构建一种主动设计算法,以包括网络特定的控制属性。航空公司网络设计人员(称为网络架构师)可以使用此工具来评估通过更改网络配置来获得更大容量的可能性。自1978年的《航空管制放松法案》以来,航空公司服务网络已发展成为一个独特的枢纽-和分支(H&S)网络。 H&S网络上的机载需求是始发目的地(O-D)需求和转移需求的总和。即使飞行或登机需求是O-D需求和航空公司网络上的乘客路线的函数,也很少经常对登机和O-D需求进行区分。取而代之的是,当今许多需求预测实践都是基于飞机空运的扩大,其中包括往返网络集线器的需求。根据这项研究,发现可以通过将飞机进一步分解成更小的信息来改善当前的需求预测实践。结果,飞机的需求被分解为内在的和可变的部分。提出的内在需求模型基于“真实” O-D需求的概念,其中包括每次往返行程的方向。使用真正的O-D概念的结果揭示了机场在网络上的社会经济功能作用。从数据中可以看出生产需求和吸引需求的线性趋势。因此,该方法有望提供更准确的预测能力。有了内在需求模型,需求的可变部分将基于航空运输网络模型建模,该模型是采用加速演化方案构建的。引入了加速进化方案,以将航空运输网络视为一种进化的网络,而不是参数化的网络。网络模型在经历演化路径以生成目标网络之前,先获取内在需求数据。网络模型的结果表明,可以使用进化结构对航空运输网络进行建模,并且有可能生成紧密模拟的NAS。 Lambert-St。的去中心情景研究。路易斯国际机场证明了所提出的网络模型的预测能力。固有需求建模和演化网络建模的整个过程是独特的,对于模拟航空运输网络的主动控制非常有帮助。

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