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Mohammad Mehrabi

3 accepted papers

2021

Fundamental Tradeoffs in Distributionally Adversarial Training

ICML 2021spotlight

Adversarial training is among the most effective techniques to improve robustness of models against adversarial perturbations. However, the full effect of this approach on models is not well understood. For example, while adversarial training can reduce the adversarial risk (prediction error against…

Cited by 29SourcePDFScholar
2018

Bounds on the Approximation Power of Feedforward Neural Networks

ICML 2018oral

The approximation power of general feedforward neural networks with piecewise linear activation functions is investigated. First, lower bounds on the size of a network are established in terms of the approximation error and network depth and width. These bounds improve upon state-of-the-art bounds f…

Cited by 12SourcePDFScholar