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基于驾驶场景与决策规则的智能汽车换道决策

张昆 浦同林 张倩兮 聂枝根

重庆理工大学学报2024,Vol.38Issue(3):9-19,11.
重庆理工大学学报2024,Vol.38Issue(3):9-19,11.DOI:10.3969/j.issn.1674-8425(z).2024.02.002

基于驾驶场景与决策规则的智能汽车换道决策

Lane change decision making for intelligent vehicles based on driving scenarios and decision rules

张昆 1浦同林 1张倩兮 1聂枝根1

作者信息

  • 1. 昆明理工大学 交通工程学院,昆明 650500
  • 折叠

摘要

Abstract

The lane change decision directly affects the autonomous lane change of intelligent vehicles in complex traffic environments,yet current process of decision-making is afflicted with low prediction accuracy and poor safety.To address these problems,this paper proposes a lane change decision model based on driving scenarios and decision rules.First,the new decision feature variables,desired velocity after lane change and distance difference from the vehicles before and after lane change,are introduced,considering the influence of the traffic conditions of post-lane change.The lane change decision rules are made based on the correlation between the feature variables and the lane change decision,considering the human decision logic.Then,the lane change scenarios dataset simulating the real-time driving environment is built and validated,which augments the NGSIM dataset.The support vector machine model based on the Bayesian optimization kernel function is proposed for the multi-parameter and nonlinear problem of lane change decision.Finally,the model is tested and validated on the lane change scenarios dataset.Our comparison results show the newly introduced decision feature variables exert positive effects on lane change behavior and the lane change scenarios dataset simulates the real-time driving conditions,which can be further applied to the research of lane change decision-making and trajectory planning.The support vector machine achieves a prediction accuracy of 95.40%,higher than other machine learning classifiers,improving the safety of lane change behaviors.

关键词

换道场景/智能网联汽车/换道决策/特征提取/支持向量机

Key words

lane change scenarios/intelligent vehicles/lane change decision-making/feature extraction/support vector machine

分类

交通运输

引用本文复制引用

张昆,浦同林,张倩兮,聂枝根..基于驾驶场景与决策规则的智能汽车换道决策[J].重庆理工大学学报,2024,38(3):9-19,11.

基金项目

国家自然科学基金项目(52262053) (52262053)

重庆理工大学学报

OACSTPCD

1674-8425

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