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  4. Adversarial Examples are Misaligned in Diffusion Model Manifolds
 
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2024
Conference Paper
Title

Adversarial Examples are Misaligned in Diffusion Model Manifolds

Abstract
In recent years, diffusion models (DMs) have drawn significant attention for their success in approximating data distributions, yielding state-of-the-art generative results. Nevertheless, the versatility of these models extends beyond their generative capabilities to encompass various vision applications, such as image inpainting, segmentation, adversarial robustness, among others. This study is dedicated to the investigation of adversarial attacks through the lens of diffusion models. However, our objective does not involve enhancing the adversarial robustness of image classifiers. Instead, our focus lies in utilizing the diffusion model to detect and analyze the anomalies introduced by these attacks on images. To that end, we systematically examine the alignment of the distributions of adversarial examples when subjected to the process of transformation using diffusion models. The efficacy of this approach is assessed across CIFAR-10 and ImageNet datasets, including varying image sizes in the latter. The results demonstrate a notable capacity to discriminate effectively between benign and attacked images, providing compelling evidence that adversarial instances do not align with the learned manifold of the DMs.
Author(s)
Lorenz, Peter
Universität Heidelberg
Durall, Ricard
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Keuper, Janis
University of Applied Sciences Offenburg
Mainwork
Proceedings of the International Joint Conference on Neural Networks
Conference
2024 International Joint Conference on Neural Networks, IJCNN 2024
DOI
10.1109/IJCNN60899.2024.10650024
Language
English
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
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