• Title/Summary/Keyword: Bad road surface detection model

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Design of Warning Devices for Personal Mobility Using Road Detection Image Processing and Sensors (노면 탐지 영상처리 및 센서를 활용한 개인형 이동장치용 경고 장치 설계)

  • Su-Jin Choi;Ga-Eun Kim;Da-Un Shin;Ji-Yeon Park;Hyung-Jin Mun
    • Journal of Industrial Convergence
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    • v.22 no.10
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    • pp.21-28
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    • 2024
  • Personal Mobility devices pose a significant safety risk to users depending on road conditions. With the recent surge in usage, the number of accidents has also increased, highlighting the need for a preventative system. This study aims to design and develop a warning system to enhance the safety of drivers by detecting road obstacles. To achieve this, a dataset is constructed using images of road obstacles, and the YOLOv5 model is trained. The system is based on the Raspberry Pi 4B, which processes video frames captured by a camera in real-time and triggers an LED warning when an obstacle is detected. The Flask framework is used to monitor the obstacle detection status in real time. Additionally, a GPS sensor is utilized to collect the user's location and speed data, and an auditory warning is triggered via a buzzer if the set speed is exceeded. In the future, this system could be expanded to transmit detected road obstacles and GPS information to a server, providing users with real-time road safety information. The results of this study can serve as essential technology for developing such a system.