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首页> 外文期刊>International journal of mobile network design and innovation >A calibration framework of car following models for safety analysis based on vehicle tracking data from smartphone probes
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A calibration framework of car following models for safety analysis based on vehicle tracking data from smartphone probes

机译:基于智能手机探针的车辆跟踪数据进行安全分析的汽车跟随模型的校准框架

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摘要

This study introduces a new methodology for acquiring vehicle tracking data with which to calibrate and validate microsimulation traffic models for safety analysis. Most common approaches are based on video image processing algorithms or the use of roadside Bluetooth detectors. In this paper a procedure is presented that makes use of on-board assisted-GPS equipped smartphone probes supplemented by other location services including Wi-Fi positioning system and cell-site multilateration. The calibration procedure was apgjied to the VISSIM® software using a genetic algorithm to systematically modify the parameters of car following behaviour model in order to fit vehicle tracking data obtained from simulations to the measured ones. Vehicle tracking data are analysed in terms of rear-end interactions among vehicles in traffic stream; these interactions are expressed by the deceleration rate to avoid a crash, a surrogate safety measure accounting for the speed differential between follower and leader vehicles and their closing time.
机译:这项研究介绍了一种获取车辆跟踪数据的新方法,该方法可用于校准和验证微观仿真交通模型以进行安全性分析。最常见的方法是基于视频图像处理算法或使用路边蓝牙检测器。在本文中,提出了一种程序,该程序利用配备了GPS辅助功能的机载智能手机探针,并辅以其他定位服务,包括Wi-Fi定位系统和蜂窝基站多边定位。使用遗传算法将校准程序附加到VISSIM®软件中,以系统地修改汽车跟随行为模型的参数,以使从模拟获得的车辆跟踪数据适合于所测得的数据。根据交通流中车辆之间的后端交互来分析车辆跟踪数据;这些相互作用由避免碰撞的减速率,替代安全措施来表示,该替代安全措施考虑了从动车辆与领导者车辆之间的速度差及其关闭时间。

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