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An Assessment of Age and Gender Characteristics of Mixed Traffic with Autonomous and Manual Vehicles: A Cellular Automata Approach

机译:对自主和手动车辆混合交通的年龄和性别特征评估:一种细胞自动机方法

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摘要

Traffic congestion has become increasingly prevalent in many urban areas, and researchers are continuously looking into new ways to resolve this pertinent issue. Autonomous vehicles are one of the technologies expected to revolutionize transportation systems. To this very day, there are limited studies focused on the impact of autonomous vehicles in heterogeneous traffic flow in terms of different driving modes (manual and self-driving). Autonomous vehicles in the near future will be running parallel with manual vehicles, and drivers will have different characteristics and attributes. Previous studies that have focused on the impact of autonomous vehicles in these conditions are scarce. This paper proposes a new cellular automata model to address this issue, where different autonomous vehicles (cars and buses) and manual vehicles (cars and buses) are compared in terms of fundamental traffic parameters. Manual cars are further divided into subcategories on the basis of age groups and gender. Each category has its own distinct attributes, which make it different from the others. This is done in order to obtain a simulation as close as possible to a real-world scenario. Furthermore, different lane-changing behavior patterns have been modeled for autonomous and manual vehicles. Subsequently, different scenarios with different compositions are simulated to investigate the impact of autonomous vehicles on traffic flow in heterogeneous conditions. The results suggest that autonomous vehicles can raise the flow rate of any network considerably despite the running heterogeneous traffic flow.
机译:在许多城市地区,交通拥堵变得越来越普遍,研究人员不断探讨解决这一相关问题的新方法。自治车辆是预防运输系统的技术之一。至今,有有限的研究专注于自主车辆在不同驱动模式(手动和自动驾驶)方面的异构交通流量的影响。在不久的将来的自动车辆将与手动车辆平行运行,司机将具有不同的特征和属性。以前专注于自治车辆在这些条件下的影响的研究是稀缺的。本文提出了一种新的蜂窝自动机模型来解决这个问题,其中不同的自治车辆(汽车和公共汽车)和手动车辆(汽车和公共汽车)在基本的交通参数方面进行了比较。手动车在年龄组和性别的基础上进一步分为子类别。每个类别都有自己的独特属性,使其与其他属性不同。这样做是为了获得尽可能接近的模拟,以实现真实的场景。此外,为自主和手动车辆建模了不同的车道改变行为模式。随后,模拟具有不同组成的不同场景,以研究自主车辆对异构条件下的交通流量的影响。结果表明,尽管运行的异构交通流量,自动车辆可以显着提高任何网络的流速。

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