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Mitigating Bunching with Bus-following Models and Bus-to-Bus Cooperation

机译:缓解与公交车型模型和公交车到巴士合作的聚集

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Bus bunching is an instability problem where buses operating on high frequency public transport lines arrive at stops in bunches. In this work, we unveil that bus-following models can be used to design bus-to-bus cooperative control strategies and mitigate bunching. The use of bus-following models avoids the explicit modelling of bus-stops, which would render the resulting problem discrete, with events occurring at arbitrary time intervals. In a "follow-the-leader" two-bus system, bus-to-bus communication allows the driver of the following bus to observe (from a remote distance) the position and speed of a lead bus operating in the same transport line. The information transmitted from the lead bus is then used to control the speed of the follower to eliminate bunching. In this context, we first propose practical linear and nonlinear control laws to regulate space headways and speeds, which would lead to bunching cure. Then a combined state estimation and remote control scheme, which is based on the Linear-Quadratic Gaussian theory, is developed to capture the effect of bus stops, traffic disturbances, and randomness in passenger arrivals. To investigate the behaviour and performance of the developed approaches the 9-km 1-California line in San Francisco with about 50 arbitrary spaced bus stops is used. Simulations with real passenger data obtained from the San Francisco Municipal Transportation Agency are carried out. Results show bunching avoidance and significant improvements in terms of schedule reliability of bus services and delays. The proposed control is robust, scalable in terms of public transport network size, and thus easy to implement in real-world settings.
机译:总线束缚是一个不稳定的问题,在高频公共交通线路上运行的公共汽车到达串的停止。在这项工作中,我们揭示了公共汽车跟随的型号可用于设计公交车到总线合作控制策略并减轻束缚。使用总线型号的型号避免了总线上的明确建模,这将使所产生的问题离散,以任意时间间隔发生的事件。在“跟随领导者”二公交系统中,总线到总线通信允许以下总线的驾驶员观察(从远程距离)在同一传输线中操作的引线总线的位置和速度。然后使用从引线总线传输的信息来控制从动件的速度来消除束缚。在这种情况下,我们首先提出了实用的线性和非线性控制法来调节空间头部和速度,这将导致束缚治愈。然后,基于线性二次高斯理论的组合状态估计和遥控方案是开发的,以捕获乘客到货中的总线停止,交通障碍和随机性的效果。为了调查发达方法的行为和性能,使用了大约50个任意间隔的总线停止的旧金山的9公里1-California线。采用旧金山市运输机构获得的实际乘客数据进行了模拟。结果显示在公交服务和延误的时间表可靠性方面进行了分配和显着改进。拟议的控制是强大的,在公共交通网络规模方面可扩展,因此易于在现实世界中实现。

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