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Utilizing bluetooth and adaptive signal control data for real-time safety analysis on urban arterials

机译:利用蓝牙和自适应信号控制数据对城市动脉进行实时安全性分析

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Real-time safety analysis has been widely adopted to reveal the relationship between real-time traffic characteristics and crash occurrence, and these results could be applied to improve active traffic management systems and enhance safety performance. Most of the previous studies have been applied to freeways and seldom to arterials. This study attempts to examine the relationships between crash occurrence and real-time traffic and signal timing characteristics based on four urban arterials in Central Florida. Bayesian conditional logistic models (BCL) were developed by incorporating the Bluetooth, adaptive signal control, and weather data, which were extracted for a period of 20 min (four 5-minute intervals) before the time of crash occurrence. Model comparison results indicated that the model based on 5–10 min interval dataset performed the best. It revealed that the average speed, upstream left-turn volume, downstream green ratio, and rainy indicator were found to have significant effects on crash occurrence. Furthermore, Bayesian random parameters conditional logistic model (BRPCL) outperformed Bayesian random parameters logistic (BRPL) and Bayesian conditional logistic models (BCL) in terms of the area under the receiver operating characteristics curve (AUC) and Deviance Information Criterion (DIC) values. These results are important in real-time safety applications in the context of Integrated Active Traffic Management (IATM).
机译:实时安全分析已被广泛采用,以揭示实时交通特征与事故发生之间的关系,这些结果可用于改进主动交通管理系统并增强安全性能。先前的大多数研究已应用于高速公路,很少应用于动脉。这项研究试图根据佛罗里达州中部的四条城市动脉来检验事故发生与实时交通和信号定时特征之间的关系。贝叶斯条件逻辑模型(BCL)是通过结合蓝牙,自适应信号控制和天气数据而开发的,这些数据在发生碰撞之前以20分钟(四个5分钟的间隔)的时间提取。模型比较结果表明,基于5-10分钟间隔数据集的模型表现最佳。结果表明,平均速度,上游左转弯量,下游绿化率和下雨指示对撞车发生有显着影响。此外,就接收器工作特性曲线(AUC)和偏差信息准则(DIC)值下的面积而言,贝叶斯随机参数条件逻辑模型(BRPCL)优于贝叶斯随机参数逻辑模型(BRPL)和贝叶斯条件逻辑模型(BCL)。这些结果对于集成主动流量管理(IATM)的实时安全应用非常重要。

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