Calibrating Trust in Automation Through Familiarity With the Autoparking Feature of a Tesla Model X

Author:

Tenhundfeld Nathan L.1ORCID,de Visser Ewart J.2ORCID,Haring Kerstin S.3,Ries Anthony J.4,Finomore Victor S.5,Tossell Chad C.3

Affiliation:

1. The University of Alabama in Huntsville and United States Air Force Academy, USA

2. United States Air Force Academy and George Mason University, USA

3. United States Air Force Academy, USA

4. United States Air Force Academy and United States Army Research Laboratory, USA

5. West Virginia University, USA

Abstract

Because one of the largest influences on trust in automation is the familiarity with the system, we sought to examine the effects of familiarity on driver interventions while using the autoparking feature of a Tesla Model X. Participants were either told or shown how the autoparking feature worked. Results showed a significantly higher initial driver intervention rate when the participants were only told how to employ the autoparking feature, than when shown. However, the intervention rate quickly leveled off, and differences between conditions disappeared. The number of interventions and the distances from the parking anchoring point (a trashcan) were used to create a new measure of distrust in autonomy. Eyetracking measures revealed that participants disengaged from monitoring the center display as the experiment progressed, which could be a further indication of a lowering of distrust in the system. Combined, these results have important implications for development and design of explainable artificial intelligence and autonomous systems. Finally, we detail the substantial hurdles encountered while trying to evaluate “autonomy in the wild.” Our research highlights the need to re-evaluate trust concepts in high-risk, high-consequence environments.

Funder

air force office of scientific research

Publisher

SAGE Publications

Subject

Applied Psychology,Engineering (miscellaneous),Computer Science Applications,Human Factors and Ergonomics

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