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Driving risk classification based on experts evaluation

机译:基于专家评估的驾驶风险分类

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A novel multidisciplinary system for the automatic driving risk level classification is presented. The data considered involves the three basic traffic safety elements (driver, road, and vehicle), as well as knowledge from traffic experts. The driving experiments were conducted in a truck cabin simulator handled by a professional driver, considering the most common real-world enviroments. Each traffic expert evaluate the driving risk on a 0 to 100 visual analogue scale. The driver, road and vehicle information was used to train five different data mining algorithms in order to predict the driving risk level. The benefits of the completeness of the data considered in our system are presented and discussed.
机译:提出了一种用于自动驾驶风险级别分类的新型多学科系统。数据被认为是三个基本的交通安全元素(驾驶员,道路和车辆),以及交通专家的知识。考虑到最常见的现实世界环境,驾驶实验是在由专业驾驶员处理的卡车舱模拟器中进行。每个交通专家在0到100的视觉模拟范围内评估驾驶风险。驾驶员,道路和车辆信息用于训练五种不同的数据挖掘算法,以预测驾驶风险等级。提出并讨论了我们系统中考虑的数据完整性的好处。

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