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Autoren:
Ramanaik, Chethan Krishnamurthy; Roy, Arjun; Ntoutsi, Eirini 
Dokumenttyp:
Sonstiges / Other Publication 
Titel:
Adversarial Robustness of VAEs across Intersectional Subgroups 
Jahr:
2024 
Sprache:
Englisch 
Abstract:
Despite advancements in Autoencoders (AEs) for tasks like dimensionality reduction, representation learning and data generation, they remain vulnerable to adversarial attacks. Variational Autoencoders (VAEs), with their probabilistic approach to disentangling latent spaces, show stronger resistance to such perturbations compared to deterministic AEs; however, their resilience against adversarial inputs is still a concern. This study evaluates the robustness of VAEs against non-targeted adversar...    »
 
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 
Sonstige Angaben:
Preprint auf arXiv; Presented at the BIAS Workshop co-located with ECML PKDD 2024