Frank, Darius-Aurel, Elbaek, Christian T., Kjaer Borsting, Caroline, Mitkidis, Panagiotis, Otterbring, Tobias and Borau, Sylvie (2021) Drivers and social implications of Artificial Intelligence adoption in healthcare during the COVID-19 pandemic. Plos One, vol.16.

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Official URL : http://iast.fr/pub/126664
Identification Number : 10.1371/journal.pone.0259928

Abstract

The COVID-19 pandemic continues to impact people worldwide–steadily depleting scarce resources in healthcare. Medical Artificial Intelligence (AI) promises a much-needed relief but only if the technology gets adopted at scale. The present research investigates people’s intention to adopt medical AI as well as the drivers of this adoption in a representative study of two European countries (Denmark and France, N = 1068) during the initial phase of the COVID-19 pandemic. Results reveal AI aversion; only 1 of 10 individuals choose medical AI over human physicians in a hypothetical triage-phase of COVID-19 pre-hospital entrance. Key predictors of medical AI adoption are people’s trust in medical AI and, to a lesser extent, the trait of open-mindedness. More importantly, our results reveal that mistrust and perceived uniqueness neglect from human physicians, as well as a lack of social belonging significantly increase people’s medical AI adoption. These results suggest that for medical AI to be widely adopted, people may need to express less confidence in human physicians and to even feel disconnected from humanity. We discuss the social implications of these findings and propose that successful medical AI adoption policy should focus on trust building measures–without eroding trust in human physicians.

Item Type: Article
Language: English
Date: November 2021
Refereed: Yes
Place of Publication: San Francisco
Subjects: B- ECONOMIE ET FINANCE
Divisions: TSE-R (Toulouse)
Site: UT1
Date Deposited: 13 Sep 2022 14:25
Last Modified: 13 Sep 2022 14:25
OAI Identifier: oai:tse-fr.eu:126664
URI: https://publications.ut-capitole.fr/id/eprint/46205
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