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Using Floating Car Data to Analyse the Effects of ITS Measures and Eco-Driving

机译:使用浮动汽车数据分析ITS措施和生态驾驶的效果

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摘要

The road transportation sector is responsible for around 25% of total man-made CO2 emissions worldwide. Considerable efforts are therefore underway to reduce these emissions using several approaches, including improved vehicle technologies, traffic management and changing driving behaviour. Detailed traffic and emissions models are used extensively to assess the potential effects of these measures. However, if the input and calibration data are not sufficiently detailed there is an inherent risk that the results may be inaccurate. This article presents the use of Floating Car Data to derive useful speed and acceleration values in the process of traffic model calibration as a means of ensuring more accurate results when simulating the effects of particular measures. The data acquired includes instantaneous GPS coordinates to track and select the itineraries, and speed and engine performance extracted directly from the on-board diagnostics system. Once the data is processed, the variations in several calibration parameters can be analyzed by comparing the base case model with the measure application scenarios. Depending on the measure, the results show changes of up to 6.4% in maximum speed values, and reductions of nearly 15% in acceleration and braking levels, especially when eco-driving is applied.
机译:公路运输部门约占全球人为二氧化碳排放总量的25%。因此,正在采取多种措施来减少这些排放,包括改进车辆技术,交通管理和改变驾驶行为。详细的交通和排放模型被广泛用于评估这些措施的潜在影响。但是,如果输入和校准数据不够详细,则存在固有的风险,即结果可能不准确。本文介绍了在交通模型校准过程中使用浮动汽车数据得出有用的速度和加速度值,以作为在模拟特定措施的效果时确保更准确的结果的一种方法。采集的数据包括用于跟踪和选择路线的瞬时GPS坐标,以及直接从车载诊断系统提取的速度和发动机性能。处理完数据后,可以通过将基本案例模型与测量应用方案进行比较来分析几个校准参数中的变化。根据不同的测量方法,结果显示最大速度值变化最多6.4%,加速和制动水平降低近15%,特别是在采用生态驾驶时。

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