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基于高速公路的驾驶员换道意图识别

Lane Change Intention Identification of Motorists Based on Expressway
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摘要 近年来,车辆安全问题成为社会关注的焦点。高速公路存在两类典型的驾驶员行车意图,分别为车道保持和意图换道。在意图换道的过程中,对驾驶人控制车辆提出了更高的要求。基于BP神经网络提出了一个模型,用于检测高速公路上驾驶员的车道变更意图。预测结果表明,在换道时刻,预测精度可达到99.3%,以0.5 s为间隔向前推,换道前1 s的准确率为98.0%,换道前2 s的准确率为84.8%,换道前3 s的准确率为70.7%;随机选取样本对模型的准确率进行验证,换道时刻准确率为96.7%。为深入研究驾驶员的输入特征奠定基础。 In recent years,vehicle safety has become the focus of social attention.There are two kinds of typical drivers'driving intentions in expressway,which are lane keeping and lane changing.In the process of intending to change lanes,higher requirements are put forward for the driver to control the vehicle.In this paper,a model based on BP neural network is proposed to detect the driver's lane change intention on expressway.The prediction results show that at the time of lane change,the prediction accuracy can reach 99.3%,pushing forward at an interval of 0.5 s,the accuracy of 1 s before lane change is 98.0%,the accuracy of 2 s before lane change is 84.8%,and the accuracy of 3 s before lane change is 70.7%:Random samples are selected to verify the accuracy of the model,and the accuracy of lane changing time is 96.7%.It lays a foundation for in-depth study of driver input characteristics.
作者 郎悦茹 LANG Yueru(School of Automobile,Chang’an University,Xi’an 710064,China)
出处 《汽车实用技术》 2022年第14期109-112,共4页 Automobile Applied Technology
关键词 高速公路 驾驶意图 车道变换 BP神经网络 Expressway Driving intentions Lane change BP neural network
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