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An Enhanced Driver Model for Evaluating Fuel Economy on Real-World Routes

机译:一种增强型驾驶模型,用于评估现实世界路线的燃油经济性

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Assessing vehicle fuel economy in real-world driving conditions is a critical requirement to establish a reliable baseline when evaluating driver assistance systems or autonomous vehicles, where the speed profile can be optimized based on route information. Since the benchmarking is traditionally done by collecting and analyzing large amounts of data over on-road testing, virtual driver models have been developed to conduct simulation studies that allow one to understand the impact of specific driver behaviors on the vehicle speed profile. This paper presents an enhanced driver model that predicts a longitudinal vehicle speed profile based on route data, which can be calibrated with simple tests. The model extends the Intelligent Driver Model to more accurately characterize the response to stop signs, traffic lights, and other conditions typical of urban driving. The enhanced driver model can be calibrated to match the behavior of specific drivers and determine statistically-relevant distributions of model parameters.
机译:在现实世界驾驶条件下评估车辆燃料经济性是在评估驾驶员辅助系统或自治车辆时建立可靠的基线的关键要求,其中可以基于路线信息优化速度谱。由于传统上通过收集和分析了在路上测试的大量数据来完成基准,因此已经开发了虚拟驱动程序模型来进行仿真研究,以便允许一个人来了解特定驱动程序行为对车辆速度型材的影响。本文介绍了一种增强型驱动模型,可根据路线数据预测纵向车辆速度分布,这可以用简单的测试校准。该模型扩展了智能驱动模型,更准确地表征了对停止标志,红绿灯和其他城市驾驶的其他条件的响应。可以校准增强型驱动程序模型以匹配特定驱动程序的行为并确定模型参数的统计相关分布。

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