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A robust, tactic-based, real-time framework for public-transport transfer synchronization

机译:一个强大的,基于策略的,实时的公共交通传输同步框架

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Missed transfers affect public transport (PT) operations by increasing passenger's waiting and travel times and frustration. Because of the stochastic and uncertain nature of PT systems, synchronized transfers do not always materialize. This work proposes a new mathematical programming model to minimize total passenger travel time and maximize direct (without waiting) transfers. The model consists of four policies built on a combination of three tactics: holding, skip-stops, and short-turn, the last applied, for the first time, as a real-time control action. The concept is implemented in two steps: optimization and simulation. An agent-based simulation framework is used to represent real-life scenarios, generate random input data, and validate the optimization results. In order to assess the robustness of this framework, a wide range of schedule-deviation scenarios are defined using efficient algorithms for solving the control models within a rolling horizon structure. A case study of the Auckland, New Zealand, PT system is described for assessing the methodology developed. The results show a 4.7% reduction in total passenger travel time and a more than 150% increase in direct transfers. The best impressive results are attained under short headway operations. (C) 2015 Elsevier Ltd. All rights reserved.
机译:错过的接送服务会增加乘客的等候和出行时间以及让他们感到沮丧,从而影响公共交通(PT)的运营。由于PT系统的随机性和不确定性,同步传输并不总是能实现。这项工作提出了一种新的数学编程模型,以最大程度地减少旅客的总旅行时间,并最大程度地提高直接(无需等待)的中转次数。该模型由四个策略组成,这些策略基于三种策略的组合:保持,跳过和短转,最后一次应用为实时控制操作,这是第一次应用。该概念分两步实施:优化和仿真。基于代理的仿真框架用于表示现实情况,生成随机输入数据并验证优化结果。为了评估此框架的鲁棒性,使用有效算法定义了广泛的进度偏差方案,以解决滚动层结构内的控制模型。描述了对新西兰奥克兰PT系统的案例研究,以评估开发的方法。结果显示,旅客总旅行时间减少了4.7%,直接转机增加了150%以上。在短距离行驶中可获得最佳的令人印象深刻的结果。 (C)2015 Elsevier Ltd.保留所有权利。

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