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Driver Reaction Time in an Internet of Vehicles Environment

机译:车联网环境中的驾驶员反应时间

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To explore the characteristics of driver reaction time in an Internet of vehicles (IOV) environment, a vehicle-to-vehicle platform was established to perform real-world driving tests. The characteristics of the following driver's reaction time in an IOV were analyzed based on a Gaussian mixture model (GMM). By comparing fitted distribution models of the reaction times with the actual testing data in both traditional and networked vehicle environments, it was found that the GMM was superior to the normal distribution model and lognormal model in the IOV environment. The simple reaction time was reduced by 7.94%, the complex reaction time was reduced by 25.79%, and single lane basic traffic capacity was improved by 15.39% in the IOV environment. Furthermore, the population standard deviation of the driver's reaction time was reduced by 32.99% and grew more concentrated. The effects of speed on reaction time were not significant in the IOV environment.
机译:为了探索在车联网(IOV)环境中驾驶员反应时间的特征,建立了一个车对车平台来执行现实世界的驾驶测试。基于高斯混合模型(GMM),分析了IOV中以下驾驶员反应时间的特征。通过比较传统和联网车辆环境中反应时间的拟合分布模型与实际测试数据,发现在IOV环境中,GMM优于正态分布模型和对数正态模型。在IOV环境中,简单反应时间减少了7.94%,复杂反应时间减少了25.79%,单车道基本通行能力提高了15.39%。此外,驾驶员反应时间的总体标准偏差降低了32.99%,并且更加集中。速度对反应时间的影响在IOV环境中并不显着。

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