Public Transport Driver Identification System Using Histogram of Acceleration Data

Author:

Virojboonkiate Nuttun1ORCID,Chanakitkarnchok Adsadawut1,Vateekul Peerapon1,Rojviboonchai Kultida1ORCID

Affiliation:

1. Chulalongkorn University Big Data Analytics and IoT Center (CUBIC), Department of Computer Engineering, Faculty of Engineering, Chulalongkorn University, Bangkok, Thailand

Abstract

This paper introduces a driver identification system architecture for public transport which utilizes only acceleration sensor data. The system architecture consists of three main modules which are the data collection, data preprocessing, and driver identification module. Data were collected from real operation of campus shuttle buses. In the data preprocessing module, a filtering module is proposed to remove the inactive period of the public transport data. To extract the unique behavior of the driver, a histogram of acceleration sensor data is proposed as a main feature of driver identification. The performance of our system is evaluated in many important aspects, considering axis of acceleration, sliding window size, number of drivers, classifier algorithms, and driving period. Additionally, the case study of impostor detection is implemented by modifying the driver identification module to identify a car thief or carjacking. Our driver identification system can achieve up to 99% accuracy and the impostor detection system can achieve the F1 score of 0.87. As a result, our system architecture can be used as a guideline for implementing the real driver identification system and further driver identification researches.

Funder

Chulalongkorn University

Publisher

Hindawi Limited

Subject

Strategy and Management,Computer Science Applications,Mechanical Engineering,Economics and Econometrics,Automotive Engineering

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Real-Time Driver Identification System in the Internet of Vehicles: Seamless Integration of Deep Learning and Cloud Computing;2024 International Congress on Human-Computer Interaction, Optimization and Robotic Applications (HORA);2024-05-23

2. Driver Identification by an Ensemble of CNNs Obtained from Majority-Voting Model Selection;Artificial Intelligence and Smart Vehicles;2023

3. Driver identification through vehicular CAN bus data: An ensemble deep learning approach;IET Intelligent Transport Systems;2022-11-05

4. Driver Identification Methods in Electric Vehicles, a Review;World Electric Vehicle Journal;2022-11-03

5. Siamese Temporal Convolutional Networks for Driver Identification Using Driver Steering Behavior Analysis;IEEE Transactions on Intelligent Transportation Systems;2022-10

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