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Identifying vehicle driver injury severity factors at highway-railway grade crossings using data mining algorithms

机译:使用数据挖掘算法识别公路铁路级交流的车辆驾驶员伤害严重性因素

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The purpose of this paper is to identify vehicle driver injury severity factors of highway-railway grade crossing (HRGC) accidents in order to detect interactions as well as dissimilarities among accident factors. At this aim, data mining techniques were used to analyze the interaction of multiple factors in large databases. This paper applies Classification-Regression Tree (CART) and Association Rules algorithms on the U.S. Federal Railroad Administration (FRA) HRGC accident database for the period of 2006 - 2013 to identify vehicle driver injury severity factors at HRGCs. Both the classification trees and the rules discovery were effective in providing meaningful insights about accident factors and their interaction. The results of the two algorithms were never contradictory. Furthermore, most of the findings of this study were consistent with the results of previous studies which used different analytical techniques, such as probabilistic models of accident injury severity. The results show that train speed, type of road vehicle, driver age and gender, position of road vehicle before accident, type of accident and highway pavement type are the key factors influencing the driver injury severity.
机译:本文的目的是识别公路铁路等级交叉(HRGC)事故的车辆驾驶员伤害严重因素,以检测事故因素之间的相互作用以及异化。在此目的,数据挖掘技术用于分析大型数据库中多个因素的相互作用。本文在2006年至2013年期间,在美国联邦铁路管理局(FRA)HRGC事故数据库上应用分类 - 回归树(推车)和关联规则算法,以识别HRGCS的车辆司机损伤严重程度因素。分类树和规则发现都有效地为事故因素及其互动提供了有意义的见解。两种算法的结果永远不会矛盾。此外,该研究的大多数结果与先前研究的结果一致,其使用不同的分析技术,例如事故损伤严重程度的概率模型。结果表明,火车速度,公路车辆,驾驶员年龄和性别,道路车辆的位置,事故发生,事故类型和公路路面类型是影响司机损伤严重程度的关键因素。

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