Most ReLU Networks Suffer from Adversarial Perturbations
Amit Daniely, Hadas Shacham
2020Year
17Citations
4Top-tier citations
Abstract
We consider ReLU networks with random weights, in which the dimension decreases at each layer. We show that for most such networks, most examples admit an adversarial perturbation at an Euclidean distance of , where is the input dimension. Moreover, this perturbation can be found via gradient flow, as well as gradient descent with sufficiently small steps. This result can be seen as an explanation to the abundance of adversarial examples, and to the fact that they are found via gradient descent.
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Install the CLIlune papers fulltext 487794de-03a7-47d4-b263-29f8aced959fCited by top-tier papers4
- Shift Invariance Can Reduce Adversarial RobustnessVasu Singla, Songwei Ge, Ronen Basri, David W. JacobsNeurIPS 2021 · 29 citations
- Adversarial Training from Mean Field PerspectiveSoichiro Kumano, Hiroshi Kera, Toshihiko YamasakiNeurIPS 2023 · 2 citations
- Feature Averaging: An Implicit Bias of Gradient Descent Leading to Non-Robustness in Neural NetworksBinghui Li, Zhixuan Pan, Kaifeng Lyu, Jian LiICLR 2025
- Adversarial Training Can Provably Improve Robustness: Theoretical Analysis of Feature Learning Process Under Structured DataBinghui Li, Yuanzhi LiICLR 2025
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