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Authors:
Panagiotou, Emmanouil; Heurich, Manuel; Landgraf, Tim; Ntoutsi, Eirini 
Document type:
Konferenzbeitrag / Conference Paper 
Title:
TABCF: Counterfactual Explanations for Tabular Data Using a Transformer-Based VAE 
Title of conference publication:
ICAIF '24: Proceedings of the 5th ACM International Conference on AI in Finance 
Conference title:
ACM International Conference on AI in Finance (5., 2024, New York) 
Venue:
New York 
Year of conference:
2024 
Date of conference beginning:
14.11.2024 
Date of conference ending:
17.11.2024 
Place of publication:
New York 
Publisher:
ACM 
Year:
2024 
Pages from - to:
274-282 
Language:
Englisch 
Abstract:
In the field of Explainable AI (XAI), counterfactual (CF) explanations are one prominent method to interpret a black-box model by suggesting changes to the input that would alter a prediction. In real-world applications, the input is predominantly in tabular form and comprised of mixed data types and complex feature interdependencies. These unique data characteristics are difficult to model, and we empirically show that they lead to bias towards specific feature types when generating CFs. To ove...    »
 
ISBN:
979-8-4007-1081-0 
Department:
Fakultät für Informatik 
Institute:
INF 7 - Institut für Datensicherheit 
Chair:
Ntoutsi, Eirini 
Open Access yes or no?:
Ja / Yes 
Type of OA license:
CC BY 4.0