Sparse DNNs with Improved Adversarial Robustness

Yiwen Guo, Chao Zhang, Changshui Zhang, Yurong Chen

Neural Information Processing Systems 

By converting dense models into sparse ones, pruning appears to be a promising solution to reducing the computation/memory cost. This paper studies classification models, especially DNN-based ones, to demonstrate that there exists intrinsic relationships between their sparsity and adversarial robustness.

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