4.6 Article

On-Road Detection of Driver Fatigue and Drowsiness during Medium-Distance Journeys

期刊

ENTROPY
卷 23, 期 2, 页码 -

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MDPI
DOI: 10.3390/e23020135

关键词

sleepiness; fatigue; driver conditions; heart rate variability; on-road experiment

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This research utilized a fatigue-related sleepiness detection algorithm based on pulse rate variability to monitor long-term changes in driver's condition in real-time, validated through comparison with PERCLOS. The study demonstrated the potential of continuously monitoring driver's status via HRV detection of ANS activation/deactivation states to prevent accidents caused by drowsiness while driving.
Background: The detection of driver fatigue as a cause of sleepiness is a key technology capable of preventing fatal accidents. This research uses a fatigue-related sleepiness detection algorithm based on the analysis of the pulse rate variability generated by the heartbeat and validates the proposed method by comparing it with an objective indicator of sleepiness (PERCLOS). Methods: changes in alert conditions affect the autonomic nervous system (ANS) and therefore heart rate variability (HRV), modulated in the form of a wave and monitored to detect long-term changes in the driver's condition using real-time control. Results: the performance of the algorithm was evaluated through an experiment carried out in a road vehicle. In this experiment, data was recorded by three participants during different driving sessions and their conditions of fatigue and sleepiness were documented on both a subjective and objective basis. The validation of the results through PERCLOS showed a 63% adherence to the experimental findings. Conclusions: the present study confirms the possibility of continuously monitoring the driver's status through the detection of the activation/deactivation states of the ANS based on HRV. The proposed method can help prevent accidents caused by drowsiness while driving.

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