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Estimating Real-Time Traffic Carbon Dioxide Emissions Based on Intelligent Transportation System Technologies

机译:基于智能交通系统技术的实时交通二氧化碳排放量估算

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摘要

In this paper, a bottom–up vehicle emission model is proposed to estimate real-time $hbox{CO}_{2}$ emissions using intelligent transportation system (ITS) technologies. In the proposed model, traffic data that were collected by ITS are fully utilized to estimate detailed vehicle technology data (e.g., vehicle type) and driving pattern data (e.g., speed, acceleration, and road slope) in the road network. The road network is divided into a set of small road segments to consider the effects of heterogeneous speeds within a road link. A real-world case study in Beijing, China, is carried out to demonstrate the applicability of the proposed model. The spatiotemporal distributions of $ hbox{CO}_{2}$ emissions in Beijing are analyzed and discussed. The results of the case study indicate that ITS technologies can be a useful tool for real-time estimations of $hbox{CO}_{2}$ emissions with a high spatiotemporal resolution.
机译:在本文中,提出了一种自下而上的车辆排放模型,以使用智能运输系统(ITS)技术估算实时$ hbox {CO} _ {2} $排放。在提出的模型中,由ITS收集的交通数据被充分利用以估算道路网络中的详细车辆技术数据(例如车辆类型)和驾驶模式数据(例如速度,加速度和道路坡度)。道路网络被分为一组小路段,以考虑道路连接线内不同速度的影响。在中国北京进行了一个实际案例研究,以证明该模型的适用性。分析并讨论了北京地区hbox {CO} _ {2} $排放的时空分布。案例研究的结果表明,ITS技术可以以高时空分辨率实时估算$ hbox {CO} _ {2} $的排放量,成为一种有用的工具。

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