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Robustness Analysis of Deep Neural Networks in the Presence of Adversarial Perturbations and Noisy Labels

(Sprache: Englisch)
 
 
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In this thesis, we study the robustness and generalization properties of Deep Neural Networks (DNNs) under various noisy regimes, due to corrupted inputs or labels. Such corruptions can be either random or intentionally crafted to disturb the target DNN....
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