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Towards Warranted Trust: A Model on the Relation Between Actual and Perceived System Trustworthiness

Author:
Schlicker, Nadine Frauke [DBLP] ;
Langer, Markus [DBLP]
Abstract
The public discussion about trustworthy AI is fueling research on new methods to make AI explainable and fair. However, users may incorrectly assess system trustworthiness and could consequently overtrust untrustworthy systems or undertrust trustworthy systems. In order to understand what determines accurate assessments of system trustworthiness we apply Brunswik’s Lens Model and the Realistic Accuracy Model. The assumption is that the actual trustworthiness of a system cannot be accessed directly and is therefore inferred via cues to form a user’s perceived trustworthiness. The accuracy of trustworthiness assessment then depends on: cue relevance, availability, detection, and utilization. We describe how the model can be used to systematically investigate determinants that increase the match between system’s actual trustworthiness and user’s perceived trustworthiness in order to achieve warranted trust.
  • Citation
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Schlicker, N. F. & Langer, M., (2021). Towards Warranted Trust: A Model on the Relation Between Actual and Perceived System Trustworthiness. In: Schneegass, S., Pfleging, B. & Kern, D. (Hrsg.), Mensch und Computer 2021 - Tagungsband. New York: ACM. (S. 347-351). DOI: 10.1145/3473856.3474018
@inproceedings{mci/Schlicker2021,
author = {Schlicker, Nadine Frauke AND Langer, Markus},
title = {Towards Warranted Trust: A Model on the Relation Between Actual and Perceived System Trustworthiness},
booktitle = {Mensch und Computer 2021 - Tagungsband},
year = {2021},
editor = {Schneegass, Stefan AND Pfleging, Bastian AND Kern, Dagmar} ,
pages = { 347-351 } ,
doi = { 10.1145/3473856.3474018 },
publisher = {ACM},
address = {New York}
}

Weitere Information zum Dokument oder der Volltext des Dokuments sind auf einem externen Server verfuegbar: https://dl.acm.org/doi/10.1145/3473856.3474018

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More Info

DOI: 10.1145/3473856.3474018
xmlui.MetaDataDisplay.field.date: 2021
Language: en (en)
Content Type: Text/Conference Paper

Keywords

  • Trustworthiness
  • human-centered AI
Collections
  • Tagungsband MuC 2021 [80]

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Diese Digital Library basiert auf DSpace.

 

 


About uns | FAQ | Help | Imprint | Datenschutz

Gesellschaft für Informatik e.V. (GI), Kontakt: Geschäftsstelle der GI
Diese Digital Library basiert auf DSpace.