Detection on Frequent Lane-Change Behavior Using Smart phone Inertial Sensor Data
编号:179 访问权限:仅限参会人 更新:2021-12-03 10:15:39 浏览:119次 张贴报告

报告开始:2021年12月17日 09:27(Asia/Shanghai)

报告时间:1min

所在会场:[P1] Poster2020 [P1T1] Track 1 Advanced Transportation Information and Control Engineering

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摘要
Frequent lane-change of vehicles will have a serious impact on traffic safety and traffic congestion. In the era of the Internet of Vehicles, it is helpful to regulate the driver's driving behavior by detecting frequent lane-change behaviors and promptly alerting the driver. In this paper, the accelerometer and gyroscope data collected by the smartphone inertial sensor are used to analyze the lane-change behavior of the vehicle. The data is trained by AdaBoost and combined with the sliding time window for frequency identification. In order to verify the effectiveness of the proposed algorithm, compared with SVM algorithm and BP neural network, the results show that AdaBoost algorithm is superior to SVM algorithm and BP neural network. Finally, the same experiment was conducted with the data collected by the high-precision inertial at the same time. Compared with the results of Adaboost algorithm, the practicability of the proposed method is further verified.
关键词
CICTP
报告人
Yuqin Zhang
Chang'an University

稿件作者
Yuqin Zhang Chang'an University
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重要日期
  • 会议日期

    12月17日

    2021

    12月20日

    2021

  • 12月16日 2021

    报告提交截止日期

  • 12月24日 2021

    注册截止日期

主办单位
Chinese Overseas Transportation Association
Chang'an University
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