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High-resolution simulation-based analysis of leading vehicle acceleration profiles at signalized intersections for emission modeling

机译:发射造型信号交叉口领先车辆加速度型材的高分辨率仿真分析

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摘要

The acceleration profile of leading vehicles at intersections is critical for emission estimation and microlevel queue simulation. Data obtained from experiments using a high-resolution driving simulator can deliver useful insights into microscale acceleration behaviors at signalized intersections. Acceleration data of the leading vehicles in queues are collected by the simulator. The observed accelerations are found to be stochastic. The acceleration characteristics are also significantly diversified among participants. Hence, a Markov chain is implemented to simulate the acceleration behaviors. The acceleration data are classified into varied operation states. And the Markov chain reconstructs the acceleration profiles of leading vehicles and reproduces the randomness of acceleration behaviors. Among numerous candidate profiles, a speed profile is selected by a proposed criterion that represents the typical acceleration behaviors at signalized intersections.
机译:在交叉点处的前导车辆的加速度曲线对于发射估计和MicroLevel队列仿真至关重要。 使用高分辨率驾驶模拟器的实验获得的数据可以在信号交叉口的微观加速度行为中提供有用的见解。 模拟器收集队列中的前导车辆的加速数据。 发现观察到的加速度是随机的。 参与者之间的加速特性也显着多样化。 因此,实现了马尔可夫链以模拟加速行为。 加速度数据被分类为各种操作状态。 而马尔可夫链重建领先车辆的加速度,并再现加速行为的随机性。 在许多候选简档中,通过提出的标准选择速度分布,该标准表示信号中的交叉点处的典型加速度行为。

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