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Characteristics Analysis and Classification of Lane-changing Behavior after Following Process based on China-FOT *

机译:基于CHINA - 为*的过程之后平局后行为的特征分析与分类

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摘要

Lane-changing is most common driving behavior, also an important research topic of autonomous driving. Based on China-FOT database, this paper extracts 237 lane-changing cases after following process, and TTC (Time to Collision) of the beginning moment of lane-changing behavior is selected as the parameter to analyze driver's behavior characteristics. Influence of six traffic environment factors on TTC is analyzed using K-S test and one-way ANOVA (Analysis of Variance). SVM (Support Vector Machine) is employed to categorize lane-changing cases after following process according to the gravity of the danger. The result shows that, distribution of TTC when driver ends following and begins changing lane can be fitted with lognormal curve, while concerning the normal cases, the differences between individuals are unobvious. Road type, lane changing direction, type of vehicle ahead and lighting condition are significant factors. Weather condition and velocity have no significant influence on the driver's lane-change behavior after following process, however, on average, driver changes lane obviously earlier in rainy weather. A linear boundary relating to velocity between normal lane changes and pre-crash cases is determined by IO-fold cross-validation SVM.
机译:车道变化是最常见的驾驶行为,也是自动驾驶的重要研究课题。基于China-Fot数据库,本文提取了237个在进行过程之后的车道更换案例,并选择了Lane更改行为的开始时刻的TTC(碰撞)作为分析驾驶员行为特征的参数。六交通环境因子对TTC对TTC的影响及单向ANOVA(方差分析)分析。根据危险的重力,采用SVM(支持向量机)在以下过程之后对车道改变案例进行分类。结果表明,当驾驶员结束时,TTC的分布可以搭配更换车道,可以装配Lognormal曲线,同时有关正常情况,个人之间的差异是不吸收的。道路类型,车道改变方向,车辆前进的类型和照明条件是重要因素。在下面的过程之后,天气状况和速度对驾驶员的车道变革行为没有显着影响,但平均而言,驾驶员在多雨天气中显着改变车道。与普通车道变化和碰撞前壳体之间的速度有关的线性边界由IO倍交叉验证SVM确定。

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