利用基于模型的系统工程和帕累托前沿分析,对交通信号控制系统架构设计和选择进行系统应用

Ana Theodora Balaci, Eun Suk Suh, Junseok Hwang
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引用次数: 0

摘要

随着全球人口的增长,道路上的车辆越来越多,交通管理变得更加复杂。由于通勤时间浪费、高能耗和温室气体排放,效率低下的交通控制系统造成了巨大的经济损失。交通信号控制系统(TSCS)在交通管理中至关重要,会对交通流量产生重大影响;因此,相关研究正在探索新的优化方法,以适应不断变化的交通状况。然而,这些研究主要集中在新技术的注入或控制算法的优化上,并没有从整体上解决系统的结构配置问题。在本研究中,我们提出了一个独特的案例研究,将现有的系统框架应用于 TSCS 系统架构设计和选择过程。这一应用表明,TSCS 的增强是一个多方面的过程,不仅需要对控制算法等技术方面进行全面评估,还需要对系统架构、安全性和数据完整性等因素进行全面评估。由于 TSCS 越来越依赖于各子系统之间的数据交换,本案例研究还采用了系统网络安全视角,并将网络弹性作为评估 TSCS 架构性能的重要指标。此外,通过所应用的框架,利用决策选项模式生成多个 TSCS 架构配置,并识别帕累托前沿上的配置,以了解架构决策过程,从而确定了具有可执行选项的最佳 TSCS 架构配置。交通工程师和交通规划人员可将此案例研究应用作为指导,优化现有交通网络中采用的 TSCS,并为未来的城市发展设计更高效的交通网络。
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Systematic application of traffic‐signal‐control system architecture design and selection using model‐based systems engineering and Pareto frontier analysis
The global population rise has increased vehicles on roads, complicating traffic management. Inefficient traffic control systems cause significant economic losses owing to commuter time wastage, high energy consumption, and greenhouse gas emissions. Traffic signal control systems (TSCSs) are vital in traffic management, impacting traffic flow significantly; therefore, studies are exploring new optimization approaches that adapt to changing traffic conditions. However, they concentrate on either new technology infusion or on control algorithm optimization, and do not holistically address the architectural configuration of the system. In this study, we presented a unique case study by applying an existing systematic framework to the TSCS system architecture design and selection process. This application demonstrates that TSCS enhancement is a multifaceted process that requires a comprehensive assessment of not only technical aspects, such as the control algorithm, but also factors including system architecture, security, and data integrity. Because of the increasing reliance of TSCSs on data exchange between their various subsystems, this case study also adopted a cybersecurity perspective of the system and introduced cyber resiliency as a crucial metric for evaluating TSCS architecture performance. Furthermore, through the applied framework, an optimal TSCS architectural configuration with executable options was identified by generating multiple TSCS architectural configurations using decision option patterns and identifying those on the Pareto frontier to understand the architectural decision‐making process. Traffic engineers and transportation planners can use this case study application as a guide to optimize TSCSs employed in existing transportation networks and design more efficient transportation networks for future urban development.
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