Exploring the usage of supervised driving automation in naturalistic conditions

Jork Stapel, Riender Happee, Michiel Christoph, Nicole van Nes, Marieke Martens

Research output: Contribution to journalArticleScientificpeer-review

3 Citations (Scopus)
44 Downloads (Pure)

Abstract

This study reports usage of supervised automation and driver attention from longitudinal naturalistic driving observations. Automation inexperienced drivers were provided with instrumented vehicles with adaptive cruise control (ACC) and lane keeping (LK) features (SAE level 2). Data was collected comparing one month of driving without support to two months where drivers were instructed to use automation as desired. On highways, level 2 automation was used respectively 63% and 57% of the time by Tesla and BMW users, with peak usage during slow stop-and-go traffic (0–30 km/h) and higher speeds (>80 km/h). On roads with speed limits below 70 km/h, automation was used less than 8%, and use on urban roads was incidental rather than habitual. Automation usage increased with time in trip, but no clear time of day effects were found. Head pose data could not classify driver attention, and we recommend gaze tracking in future studies. Head pose deviation was selected as alternative indicator for monitoring activity. Comparing among forms of automation usage on the highway, head heading deviation was smallest during ACC use, but did not differ between automation and baseline manual driving. Head heading deviation during manual driving was smaller in the baseline than the experimental phase, which suggests that motives for manual highway driving may be attention related. Automation usage did not change much over the first 12 weeks of the experimental condition, and there were no longitudinal changes in head pose deviation.

Original languageEnglish
Pages (from-to)397-411
JournalTransportation Research Part F: Traffic Psychology and Behaviour
Volume90
DOIs
Publication statusPublished - 2022

Keywords

  • Automation use
  • Driver attention

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