2023
DOI: 10.1051/e3sconf/202345301016
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A Reinvent Survey on Machine Learning Attacks

Chetan Patil,
Zuber

Abstract: The increasing prevalence of machine learning technology highlights the urgent need to delve into its insinuations for safety and confidentiality. While inquiry on the safety aspects of mechanism knowledge has garnered considerable attention, privacy considerations have often taken a backseat, although recent years have seen a significant upswing in privacy-focused research. In an effort to contribute to this growing field, we conducted an analysis encompassing more than 40 articles addressing privacy threats … Show more

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