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An intersection-to-intersection travel time estimation and route suggestion approach using vehicular ad-hoc network

机译:利用车辆自组织网络的交叉路口行驶时间估计和路线建议方法

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Estimation of time-dependent travel time in an urban network is a challenging task due to the interrupted nature of vehicular traffic flows. A novel concept of intersection-to intersection (I2I) real-time travel time estimation (TTE) and route suggestion model based on vehicular ad-hoc network (VANET) technology is proposed for enabling the smart transportations in smart city. The system components, communication protocol and collaborative intelligence concept are designed to facilitate real-time vehicular applications. Vehicles equipped with an on-board unit (OBU) send TTE requests to the road side unit (RSU) and share their real-time information, including traveled path and average speed, and the RSU responds with the suggested shortest route as well as the estimated travel time. In order to efficiently share real-time traffic information among RSUs, a propagation-based RSU-to-RSU (R2R) data exchange algorithm and a traffic information super-matrix data structure are designed. These reduce the complexity from O(N-2) for a traditional broadcast approach to O(N). Real data collected from a GPS-based taxi dispatching system is applied to evaluate the accuracy of the proposed TTE model and the performance of the suggested route. The experimental results show that the average mean absolute error percentage (MAPE) of the proposed TTE model is 13.6% compared to real taxi journeys, which indicates that the performances of the suggested routes are good. The TTE of the suggested paths has the possibility of being 82.2% better than the paths traveled by taxi, and the travel time is thus reduced by 15.9% on average over a year. (C) 2016 Elsevier B.V. All rights reserved.
机译:由于车辆交通流的中断性,估计城市网络中与时间有关的旅行时间是一项艰巨的任务。提出了一种基于车辆自组织网络(VANET)技术的交叉口(I2I)实时旅行时间估计(TTE)和路线建议模型的新概念,以实现智能城市中的智能交通。系统组件,通信协议和协作智能概念旨在促进实时车载应用。配备了车载单元(OBU)的车辆将TTE请求发送到路边单元(RSU),并共享其实时信息,包括行驶路径和平均速度,并且RSU会以建议的最短路线以及预计旅行时间。为了有效地在RSU之间共享实时交通信息,设计了基于传播的RSU到RSU(R2R)数据交换算法和交通信息超矩阵数据结构。这些将O(N-2)的传统广播方法的复杂度从O(N-2)降低到O(N)。从基于GPS的出租车调度系统收集的真实数据被用于评估所建议的TTE模型的准确性和所建议路线的性能。实验结果表明,所提出的TTE模型的平均平均绝对错误百分率(MAPE)与实际的出租车行程相比为13.6%,这表明所建议的路线表现良好。建议路线的TTE可能比出租车行驶的路线好82.2%,因此,平均每年的行驶时间减少了15.9%。 (C)2016 Elsevier B.V.保留所有权利。

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