Cognitive workload and anticipatory processes during pedestrian time-to-arrival estimation: Evidence from EEG in an immersive virtual reality road-crossing scenario

Time-to-arrival (TTA) estimation tasks offer valuable insight into temporal processing and cognitive–motor preparatory processes involved in pedestrian safety. By using electroencephalography (EEG) and immersive virtual reality (VR), we investigated the neural dynamics underlying pedestrian TTA estimation in a simulated road-crossing scenario. Event-related potentials (ERPs), including the contingent negative variation (CNV), P2 component, and the oscillatory activity in the Alpha and Theta bands, were examined as markers of anticipation, attention, and cognitive workload. Thirty-four participants completed four experimental TTA estimation conditions defined by vehicle speed (30 vs. 50 km/h) and vehicle disappearance time (3 vs. 5 seconds). Behavioural results showed that vehicle speed significantly influenced TTA estimation accuracy, with larger estimation deviations and reduced accuracy under higher-speed conditions. At the neurophysiological level, P2 amplitude was primarily modulated by interval-timing, with larger amplitudes for longer disappearance intervals. CNV activity showed sensitivity to urgency and temporal structure, with Early CNV larger in slower-speed and shorter-interval conditions and Late CNV enhanced in faster-speed and shorter-intervals. Time–frequency analyses revealed early modulations of occipital Alpha and frontal-midline Theta activity as a function of task demands. Occipital Alpha was associated with behavioural accuracy, whereas frontal-midline Theta varied with vehicle speed. Global subjective workload was associated with condition-specific neural measures, whereas no direct association was observed with performance. Together, these findings indicate that cognitive workload and neural dynamics play a central role in pedestrian TTA estimation. By integrating EEG, VR and subjective measures, this study deepens the understanding of pedestrian cognition in road safety research.

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Journal
Transportation Research Part F Traffic Psychology and Behaviour
Published
2026-09-24
DOI
https://doi.org/10.1016/j.trf.2026.103822
Primary Topic
Traffic and Road Safety
Type
article
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article

Cognitive workload and anticipatory processes during pedestrian time-to-arrival estimation: Evidence from EEG in an immersive virtual reality road-crossing scenario

Rosa Jurado‐Barba, Ana Sión, Francisco Luque, Francisco Javier Páez et al.
Transportation Research Part F Traffic Psychology and Behaviour
Traffic and Road Safety
article

Cognitive workload and anticipatory processes during pedestrian time-to-arrival estimation: Evidence from EEG in an immersive virtual reality road-crossing scenario

Rosa Jurado‐Barba, Ana Sión, Francisco Luque, Francisco Javier Páez, Víctor Armada
article en

Abstract

Time-to-arrival (TTA) estimation tasks offer valuable insight into temporal processing and cognitive–motor preparatory processes involved in pedestrian safety. By using electroencephalography (EEG) and immersive virtual reality (VR), we investigated the neural dynamics underlying pedestrian TTA estimation in a simulated road-crossing scenario. Event-related potentials (ERPs), including the contingent negative variation (CNV), P2 component, and the oscillatory activity in the Alpha and Theta bands, were examined as markers of anticipation, attention, and cognitive workload. Thirty-four participants completed four experimental TTA estimation conditions defined by vehicle speed (30 vs. 50 km/h) and vehicle disappearance time (3 vs. 5 seconds). Behavioural results showed that vehicle speed significantly influenced TTA estimation accuracy, with larger estimation deviations and reduced accuracy under higher-speed conditions. At the neurophysiological level, P2 amplitude was primarily modulated by interval-timing, with larger amplitudes for longer disappearance intervals. CNV activity showed sensitivity to urgency and temporal structure, with Early CNV larger in slower-speed and shorter-interval conditions and Late CNV enhanced in faster-speed and shorter-intervals. Time–frequency analyses revealed early modulations of occipital Alpha and frontal-midline Theta activity as a function of task demands. Occipital Alpha was associated with behavioural accuracy, whereas frontal-midline Theta varied with vehicle speed. Global subjective workload was associated with condition-specific neural measures, whereas no direct association was observed with performance. Together, these findings indicate that cognitive workload and neural dynamics play a central role in pedestrian TTA estimation. By integrating EEG, VR and subjective measures, this study deepens the understanding of pedestrian cognition in road safety research.

Transportation Research Part F Traffic Psychology and BehaviourVol. 123
Universidad Complutense de Madrid (ES), Research Institute Hospital 12 de Octubre (ES), Camilo José Cela University (ES), Centre for Plant Biotechnology and Genomics (ES), Universidad Politécnica de Madrid (ES)
Openalex Percentile: Top 12%
Traffic and Road Safety
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