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Including heavy vehicles in a car-following model: modelling, calibrating and validating

机译:在重型汽车模型中包括重型汽车:建模,校准和验证

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Heavy vehicles influence general traffic in many different ways compared with passenger vehicles, and this may result in different levels of traffic instability. Increases in the number and proportion of heavy vehicles in the traffic stream will therefore result in different traffic flow conditions. This research initially outlines the different car-following behaviour of drivers in congested heterogeneous traffic conditions indicating the necessity for developing a car-following model, which includes these differences. A psychophysical car-following model, similar in form to Weideman's car-following model, was developed. Due to the complexity of the developed model, the calibration of the model was undertaken using a particle swarm optimisation algorithm with the data recorded under congested traffic conditions. This was then incorporated into a traffic microsimulation model. The results showed that the car-following perceptual thresholds and thus action points of drivers differ based on their vehicle and the lead vehicle types. The inclusion of the heavy vehicles in the model showed significant impacts on the traffic dynamic and interactions amongst different vehicles. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:与乘用车相比,重型车辆会以多种不同方式影响一般交通,这可能会导致不同程度的交通不稳定。因此,重型车辆在交通流中的数量和比例的增加将导致不同的交通状况。这项研究最初概述了在拥挤的异构交通状况下驾驶员的跟车行为,这表明有必要建立包括以下差异在内的跟车模型。开发了与Weideman的汽车跟随模型类似的心理物理汽车跟随模型。由于开发模型的复杂性,使用粒子群优化算法对模型进行了校准,并在交通拥堵的情况下记录了数据。然后将其合并到交通微仿真模型中。结果表明,随车者的感知阈值以及驾驶员的动作点根据其车辆和领先车辆类型而有所不同。该模型中包含重型车辆对交通动态和不同车辆之间的相互作用产生了显着影响。版权所有(c)2016 John Wiley&Sons,Ltd.

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