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A Hybrid Queue-based Bayesian Network framework for passenger facilitation modelling

机译:基于混合队列的贝叶斯网络框架,用于旅客便利化建模

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摘要

This paper presents a novel framework for the modelling of passenger facilitation in a complex environment. The research is motivated by the challenges in the airport complex system, where there are multiple stakeholders, differing operational objectives and complex interactions and interdependencies between different parts of the airport system. Traditional methods for airport terminal modelling do not explicitly address the need for understanding causal relationships in a dynamic environment. Additionally, existing Bayesian Network (BN) models, which provide a means for capturing causal relationships, only present a static snapshot of a system.ududA method to integrate a BN complex systems model with stochastic queuing theory is developed based on the properties of the Poisson and exponential distributions. The resultant Hybrid Queue-based Bayesian Network (HQBN) framework enables the simulation of arbitrary factors, their relationships, and their effects on passenger flow and vice versa.ududA case study implementation of the framework is demonstrated on the inbound passenger facilitation process at Brisbane International Airport. The predicted outputs of the model, in terms of cumulative passenger flow at intermediary and end points in the inbound process, are found to have an R2 goodness of fit of 0.9994 and 0.9982 respectively over a 10 h test period. The utility of the framework is demonstrated on a number of usage scenarios including causal analysis and ‘what-if’ analysis. This framework provides the ability to analyse and simulate a dynamic complex system, and can be applied to other socio-technical systems such as hospitals.
机译:本文为复杂环境中的旅客便利化建模提供了一个新颖的框架。该研究的动机是机场复杂系统中的挑战,那里有多个利益相关者,不同的运营目标以及机场系统不同部分之间复杂的相互作用和相互依存关系。用于机场航站楼建模的传统方法并未明确解决在动态环境中理解因果关系的需求。此外,现有的提供捕获因果关系的方法的贝叶斯网络(BN)模型仅呈现系统的静态快照。 ud ud基于该属性,开发了一种将BN复杂系统模型与随机排队理论相集成的方法泊松分布和指数分布。由此产生的基于混合队列的贝叶斯网络(HQBN)框架能够模拟任意因素,它们之间的关系以及它们对客流的影响,反之亦然。 ud ud该案例的案例研究在入境旅客便利化过程中得到了演示在布里斯班国际机场。根据模型的预测输出,根据入境过程中中间点和终点处的累积乘客流量,在10小时的测试期间内,其R2拟合优度分别为0.9994和0.9982。该框架的效用在许多使用场景中得到了证明,包括因果分析和“假设分析”。该框架提供了分析和模拟动态复杂系统的能力,并且可以应用于其他社会技术系统,例如医院。

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