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How Long a Passenger Waits for a Vacant Taxi -- Large-Scale Taxi Trace Mining for Smart Cities

机译:乘客多长时间等待空闲的出租车 - 智能城市的大型出租车微量挖掘

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To achieve smart cities, real-world trace data sensed from the GPS-enabled taxi system, which conveys underlying dynamics of people movements, could be used to make urban transportation services smarter. As an example, it will be very helpful for passengers to know how long it will take to find a taxi at a spot, since they can plan their schedule and choose the best spot to wait. In this paper, we present a method to predict the waiting time for a passenger at a given time and spot from historical taxi trajectories. The arrival model of passengers and that of vacant taxis are built from the events that taxis arrive at and leave a spot. With the models, we could simulate the passenger waiting queue for a spot and infer the waiting time. The experiment with a large-scale real taxi GPS trace dataset is carried out to verify the proposed method.
机译:为实现智能城市,从支持GPS的出租车系统感测的现实世界追踪数据,这些数据传达了人们运动的基础动态,可用于使城市运输服务更聪明。作为一个例子,乘客知道在某个地方找到出租车需要多长时间会非常有帮助,因为他们可以计划他们的日程安排并选择最佳的等待地点。在本文中,我们提出了一种在特定时间和历史出租车轨迹中预测乘客的等待时间的方法。乘客的到达模式以及空乘出租车的到来是由出租车到达并留下现场的事件建造的。通过模型,我们可以模拟乘客等候队列,以推断等待时间。进行大规模实际出租车GPS跟踪数据集的实验以验证提出的方法。

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