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Improved Image Wasserstein Attacks and Defenses

2020-04-26Code Available1· sign in to hype

Edward J. Hu, Adith Swaminathan, Hadi Salman, Greg Yang

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Abstract

Robustness against image perturbations bounded by a _p ball have been well-studied in recent literature. Perturbations in the real-world, however, rarely exhibit the pixel independence that _p threat models assume. A recently proposed Wasserstein distance-bounded threat model is a promising alternative that limits the perturbation to pixel mass movements. We point out and rectify flaws in previous definition of the Wasserstein threat model and explore stronger attacks and defenses under our better-defined framework. Lastly, we discuss the inability of current Wasserstein-robust models in defending against perturbations seen in the real world. Our code and trained models are available at https://github.com/edwardjhu/improved_wasserstein .

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