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  4. Audience-Dependent Explanations for AI-Based Risk Management Tools: A Survey
 

Audience-Dependent Explanations for AI-Based Risk Management Tools: A Survey

URI
https://arbor.bfh.ch/handle/arbor/43079
Version
Published
Date Issued
2021-12
Author(s)
Hadji Misheva, Branka  
Jaggi, David
Posth, Jan-Alexander
Gramespacher, Thomas
Osterrieder, Joerg
Type
Article
Language
English
Subjects

explainable AI

responsible AI

artificial intelligen...

machine learning

finance

risk management

Abstract
Artificial Intelligence (AI) is one of the most sought-after innovations in the financial industry. However, with its growing popularity, there also is the call for AI-based models to be understandable and transparent. However, understandably explaining the inner mechanism of the algorithms and their interpretation is entirely audience-dependent. The established literature fails to match the increasing number of explainable AI (XAI) methods with the different stakeholders’ explainability needs. This study addresses this gap by exploring how various stakeholders within the Swiss financial industry view explainability in their respective contexts. Based on a series of interviews with practitioners within the financial industry, we provide an in-depth review and discussion of their view on the potential and limitation of current XAI techniques needed to address the different requirements for explanations.
Subjects
HD61 Risk Management
T Technology (General)
DOI
10.24451/arbor.17289
https://doi.org/10.24451/arbor.17289
Publisher DOI
10.3389/frai.2021.794996
Journal
Frontiers in Artificial Intelligence
ISSN
2624-8212
Publisher URL
https://www.frontiersin.org/articles/10.3389/frai.2021.794996/full
Organization
Institut Applied Data Science & Finance  
Wirtschaft  
Volume
4
Publisher
Frontiers Research Foundation
Submitter
Hadji Misheva, Branka
Citation apa
Hadji Misheva, B., Jaggi, D., Posth, J.-A., Gramespacher, T., & Osterrieder, J. (2021). Audience-Dependent Explanations for AI-Based Risk Management Tools: A Survey. In Frontiers in Artificial Intelligence (Vol. 4). Frontiers Research Foundation. https://doi.org/10.24451/arbor.17289
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frai-04-794996.pdf

License
Attribution 4.0 International
Version
published
Size

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Format

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