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  4. The Flow of Trust: A Visualization Framework to Externalize, Explore, and Explain Trust in ML Applications
 
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March 1, 2023
Journal Article
Title

The Flow of Trust: A Visualization Framework to Externalize, Explore, and Explain Trust in ML Applications

Abstract
We present a conceptual framework for the development of visual interactive techniques to formalize and externalize trust in machine learning (ML) workflows. Currently, trust in ML applications is an implicit process that takes place in the user-s mind. As such, there is no method of feedback or communication of trust that can be acted upon. Our framework will be instrumental in developing interactive visualization approaches that will help users to efficiently and effectively build and communicate trust in ways that fit each of the ML process stages. We formulate several research questions and directions that include: 1) a typology/taxonomy of trust objects, trust issues, and possible reasons for (mis)trust; 2) formalisms to represent trust in machine-readable form; 3) means by which users can express their state of trust by interacting with a computer system (e.g., text, drawing, marking); 4) ways in which a system can facilitate users- expression and communication of the state of trust; and 5) creation of visual interactive techniques for representation and exploration of trust over all stages of an ML pipeline.
Author(s)
Elzen, Stef van den
Technische Universiteit Eindhoven
Andriyenko, Gennadiy
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Andriyenko, Nathaliya
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Fisher, Brian D.
Simon Fraser University
Martins, Rafael M.
Linnaeus University, Växjö
Peltonen, Jaakko
Tampere University
Telea, Alexandru C.
Universiteit Utrecht
Verleysen, Michel
Université Catholique de Louvain
Journal
IEEE Computer Graphics and Applications  
Project(s)
The Lamarr Institute for Machine Learning and Artificial Intelligence  
Funder
Bundesministerium für Bildung und Forschung -BMBF-  
Open Access
DOI
10.1109/MCG.2023.3237286
Additional full text version
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