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An averaging approach to estimate urban traffic speed using large-scale origin-destination data

机译:使用大规模起点-目的地数据估算城市交通速度的平均方法

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摘要

Knowledge about the driving condition can be exploited by the energy management system of plug-in hybrid electric vehicle (PHEV) to optimise its fuel economy. However, estimating urban traffic speed can be a challenging problem, since the complexity of the road network requires a large amount of sensing coverage. GPS equipped vehicles have been used to address this problem, despite the drawback of high transmission cost due to the periodic locations reporting during the entire trip. This paper presents an alternative method to estimate urban traffic speed when only the trip distance, origin, destination and trip time are known, without the detailed information about the vehicle trajectory. Taxicab fleet data is used due to its wide area-coverage and large data availability. One month (15 million) observations of taxi origin-destination data in New York City is processed using cluster computers to create a traffic speed model of Manhattan at different times of day. The developed average traffic speed model is able to accurately predict the recorded trip duration from the taxicab data, and therefore, can be used to estimate energy consumption and optimise PHEV control.
机译:插电式混合动力汽车(PHEV)的能源管理系统可以利用有关驾驶条件的知识来优化其燃油经济性。然而,由于道路网络的复杂性要求大量的感测覆盖范围,因此估计城市交通速度可能是一个具有挑战性的问题。尽管由于在整个行程中定期报告位置而导致传输成本高的缺点,但配备GPS的车辆已用于解决此问题。本文提出了一种仅在知道出行距离,起点,目的地和出行时间的情况下估算城市交通速度的替代方法,而没有关于车辆轨迹的详细信息。使用出租车车队数据是因为其覆盖范围广且数据量大。使用集群计算机处理纽约市一个月(一千五百万)的出租车始发地数据观测数据,以创建一天中不同时间的曼哈顿交通速度模型。所开发的平均交通速度模型能够根据出租车数据准确地预测所记录的行程持续时间,因此可用于估算能耗并优化PHEV控制。

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