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Manifold Regularization for Locally Stable Deep Neural Networks

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arxiv 2003.04286 v2 pith:3R44QGER submitted 2020-03-09 stat.ML cs.CVcs.LGcs.NE

classification stat.MLcs.CVcs.LGcs.NE
keywords deepnetworksregularizationaccuracyhighinftylocallymanifold
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abstract

We apply concepts from manifold regularization to develop new regularization techniques for training locally stable deep neural networks. Our regularizers are based on a sparsification of the graph Laplacian which holds with high probability when the data is sparse in high dimensions, as is common in deep learning. Empirically, our networks exhibit stability in a diverse set of perturbation models, including $\ell_2$, $\ell_\infty$, and Wasserstein-based perturbations; in particular, we achieve 40% adversarial accuracy on CIFAR-10 against an adaptive PGD attack using $\ell_\infty$ perturbations of size $\epsilon = 8/255$, and state-of-the-art verified accuracy of 21% in the same perturbation model. Furthermore, our techniques are efficient, incurring overhead on par with two additional parallel forward passes through the network.

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  1. Adapting to Evolving Adversaries with Regularized Continual Robust Training

    cs.LG 2025-02 conditional novelty 6.0 of 10

    A logit-space regularization penalty (ALR) during adversarial training and fine-tuning improves robustness across sequences of evolving attacks and reduces drops in previously defended attacks.

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