The effect of an occlusion-induced delay on braking behavior in critical situations

A driving simulator study

Journal Article (2022)
Author(s)

Joost C F de Winter (TU Delft - Human-Robot Interaction)

M. Saffarian (University of Toronto, TU Delft - Biomechanical Engineering)

John W. Senders (University of Toronto)

Research Group
Human-Robot Interaction
Copyright
© 2022 J.C.F. de Winter, M Saffarian, John W. Senders
DOI related publication
https://doi.org/10.1177/00187208221101301
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 J.C.F. de Winter, M Saffarian, John W. Senders
Research Group
Human-Robot Interaction
Issue number
7
Volume number
65 (2023)
Pages (from-to)
1336-1344
Reuse Rights

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Abstract

Objective: To share results of an experiment that used visual occlusion for a new purpose: inducing a waiting time. Background: Senders was a leading figure in human factors. In his research on the visual demands of driving, he used occlusion techniques. Methods: In a simulator experiment, we examined how drivers brake for different levels of urgency and different visual conditions. In three blocks (1 = brake lights, 2 = no brake lights, 3 = occlusion), drivers followed a vehicle at 13.4 or 33.4 m distance. At certain moments, the lead vehicle decelerated moderately (1.7 m/s2) or strongly (6.5 m/s2). In the occlusion condition, the screens blanked for 0.4 s (if 6.5 m/s2) or 2.0 s (if 1.7 m/s2) when the lead vehicle started to decelerate. Participants were instructed to brake only after the occlusion ended. Results: The lack of brake lights caused a delayed response. In the occlusion condition, drivers adapted to the instructed late braking by braking harder. However, adaptation was not always possible: In the most urgent condition, most participants collided with the lead vehicle because the ego-vehicle’s deceleration limits were reached. In non-urgent conditions, some drivers braked unnecessarily hard. Furthermore, while waiting until the occlusion cleared, some drivers lightly touched the brake pedal. Conclusion: This experimental design demonstrates how drivers (sometimes fail to) adjust their braking behavior to the criticality of the situation. Application: The phenomena of biomechanical readiness and (inappropriate) dosing of the brake pedal may be relevant to safety, traffic flow, and ADAS design.