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An Understanding of the Vulnerability of Datasets to Disparate Membership Inference Attacks

Recent efforts have shown that training data is not secured through the generalization and abstraction of algorithms. This vulnerability to the training data has been expressed through membership inference attacks that seek to discover the use of specific records within the training dataset of a mod...

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Detalles Bibliográficos
Principais autores: Hunter D. Moore, Andrew Stephens, William Scherer
Formato: Artigo
Idioma:Inglês
Publicado: MDPI AG 2022-12-01
Series:Journal of Cybersecurity and Privacy
Assuntos:
Acceso en liña:https://www.mdpi.com/2624-800X/2/4/45
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