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  4. Transparency you can trust: Transparency requirements for artificial intelligence between legal norms and contextual concerns
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Transparency you can trust: Transparency requirements for artificial intelligence between legal norms and contextual concerns

Type
journal article
Date Issued
2019
Author(s)
Felzmann, Heike
;
Fosch Villaronga, Eduard
;
Lutz, Christoph  
;
Tamo-Larrieux, Aurelia  
DOI
10.1177/2053951719860542
Abstract (De)
Transparency is now a fundamental principle for data processing under the General Data Protection Regulation. We explore what this requirement entails for artificial intelligence and automated decision-making systems. We address the topic of transparency in artificial intelligence by integrating legal, social, and ethical aspects. We first investigate the ratio legis of the transparency requirement in the General Data Protection Regulation and its ethical underpinnings, showing its focus on the provision of information and explanation. We then discuss the pitfalls with respect to this requirement by focusing on the significance of contextual and performative factors in the implementation of transparency. We show that human–computer interaction and human-robot interaction literature do not provide clear results with respect to the benefits of transparency for users of artificial intelligence technologies due to the impact of a wide range of contextual factors, including performative aspects. We conclude by integrating the information- and explanation-based approach to transparency with the critical contextual approach, proposing that transparency as required by the General Data Protection Regulation in itself may be insufficient to achieve the positive goals associated with transparency. Instead, we propose to understand transparency relationally, where information provision is conceptualized as communication between technology providers and users, and where assessments of trustworthiness based on contextual factors mediate the value of transparency communications. This relational concept of transparency points to future research directions for the study of transparency in artificial intelligence systems and should be taken into account in policymaking.
Language
English
HSG Classification
contribution to scientific community
Refereed
Yes
Publisher
Big Data & Society
Official URL
https://journals.sagepub.com/doi/full/10.1177/2053951719860542
URL
https://www.alexandria.unisg.ch/handle/20.500.14171/99209
Subject(s)

law

social sciences

Division(s)

MCM -Institute for Me...

LS - Law School

Eprints ID
262249
File(s)
Thumbnail Image
Name

Transparency you can trust_Big data and society.pdf

Size

277.16 KB

Format

Adobe PDF

Checksum (MD5)

198a2127c0ce57c4a177f5f74dddd2b6

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