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Autoren:
Alvarez, Jose M; Colmenarejo, Alejandra Bringas; Elobaid, Alaa; Fabbrizzi, Simone; Fahimi, Miriam; Ferrara, Antonio; Ghodsi, Siamak; Mougan, Carlos; Papageorgiou, Ioanna; Reyero, Paula; Russo, Mayra; Scott, Kristen M.; State, Laura; Zhao, Xuan; Ruggieri, Salvatore 
Dokumenttyp:
Zeitschriftenartikel / Journal Article 
Titel:
Policy advice and best practices on bias and fairness in AI 
Zeitschrift:
Ethics and Information Technology 
Jahrgang:
26 
Heftnummer:
Verlag:
Springer 
Jahr:
2024 
Sprache:
Englisch 
Abstract:
The literature addressing bias and fairness in AI models (fair-AI) is growing at a fast pace, making it difficult for novel researchers and practitioners to have a bird’s-eye view picture of the field. In particular, many policy initiatives, standards, and best practices in fair-AI have been proposed for setting principles, procedures, and knowledge bases to guide and operationalize the management of bias and fairness. The first objective of this paper is to concisely survey the state-of-the-art...    »
 
ISSN:
1388-1957 
Article-ID:
31 
Fakultät:
Fakultät für Informatik 
Institut:
INF 7 - Institut für Datensicherheit 
Professur:
Ntoutsi, Eirini 
Open Access ja oder nein?:
Ja / Yes 
Art der OA-Lizenz:
CC BY 4.0