Non-contact HRV features (AUC=0.863) predicted pre-crash drowsiness 6.8±2.3 min before crash, preceding behavioral signs by 5–8 min in 25 participants.
Do first and second derivatives of heart rate variability improve early detection of pre-crash states compared to conventional approaches?
Non-contact ECG monitoring of HRV derivatives combined with conventional metrics can detect drowsy driving states minutes before behavioral impairment or crashes occur.
Drowsy driving contributes to roughly 20% of traffic fatalities, yet most detection systems rely on behavioral cues that appear only after impairment has set in. Here we ask whether first and second derivatives of heart rate variability (HRV) can detect pre-crash states earlier than conventional approaches. Twenty-five participants completed 49 driving simulator sessions while we recorded cardiac activity through capacitive ECG electrodes embedded in the seat backrest—a non-contact method that avoids the privacy concerns of camera-based monitoring. To prevent circular evaluation, ground truth labels were based solely on crash proximity rather than HRV-derived scores. The combined HRV feature set (conventional metrics plus derivatives) achieved AUC = 0.863 for pre-crash prediction; derivatives alone reached only AUC = 0.573, indicating their value as complementary rather than standalone features. Driving performance indicators remained the strongest predictors (AUC = 0.999). Temporally, derivative-based detection preceded behavioral manifestations by 5–8 min and crash events by 6.8 ± 2.3 min. Across 1591 crashes and 6.78 million data points, we found that HRV derivatives capture physiological changes that precede overt impairment, though their utility depends on integration with other feature types.
Vaussenat et al. (2026) studied this question. Non-contact HRV features (AUC=0.863) predicted pre-crash drowsiness 6.8±2.3 min before crash, preceding behavioral signs by 5–8 min in 25 participants.
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