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Improved reliability of public transportation using real-time transfer synchronization

机译:通过实时传输同步提高公共交通的可靠性

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Service reliability of public transportation (PT) systems is a dominant ingredient in what is perceived as the PT image. Unreliable service increases the uncertainties of simultaneous arrivals of vehicles at a transfer point. Implementing proper control actions leads to preventing missed transfers, one of the undesirable features of PT service and a major contributor to a negative image. The present work focuses on performance measurements of a PT system offering direct transfers on multi-legged trips. The method developed evaluates and improves system performance by applying selected operational tactics in real-time scenarios. In order to investigate the efficiency level of the PT system, five types of vehicle positional situations with reference to a transfer point are considered: considerably ahead of schedule, ahead of schedule, on schedule, behind schedule, and considerably behind schedule. Each situation contributes differently to the degree of system performance. The optimization framework developed results in selected operational tactics to attain the maximum number of direct (without waiting) transfers and minimize total passenger travel time. The implementation of the concept is performed in two steps: optimization and simulation. The optimization process searches for the best operational tactics, using the states of the five vehicle-position types, and the simulation serves to validate the optimal results under a stochastic framework using the concept of a multi-agent system. A case study of Auckland, New Zealand, is described for assessing the methodology developed. Results showed a 58% improvement in the system performance index compared to no-tactic operations. (C) 2015 Elsevier Ltd. All rights reserved.
机译:公共交通(PT)系统的服务可靠性是被认为是PT图像的主要因素。不可靠的服务增加了车辆同时到达转运点的不确定性。实施适当的控制措施可防止传输遗失,这是PT服务不受欢迎的功能之一,也是造成负面形象的主要原因。本工作着重于PT系统的性能测量,该系统可提供多程旅行的直接转移。开发的方法通过在实时方案中应用选定的操作策略来评估和改善系统性能。为了研究PT系统的效率水平,考虑了五种类型的车辆位置情况(以换乘点为参考):大大提前,提前,按时,落后于时间表以及大大落后于时间表。每种情况对系统性能的影响程度不同。优化框架开发的结果是选定的操作策略,以实现最大数量的直接(无等待)转乘,并最大程度地减少乘客的总出行时间。该概念的实现分两个步骤执行:优化和仿真。优化过程使用五种车辆位置类型的状态来寻找最佳的操作策略,并且该模拟使用多智能体系统的概念来验证随机框架下的最佳结果。描述了对新西兰奥克兰市的案例研究,以评估开发的方法。结果表明,与无战术操作相比,系统性能指数提高了58%。 (C)2015 Elsevier Ltd.保留所有权利。

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