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Karim Tit

3 accepted papers

2024

Fast Reliability Estimation for Neural Networks with Adversarial Attack-Driven Importance Sampling

UAI 2024poster

This paper introduces a novel approach to evaluate the reliability of Neural Networks (NNs) by integrating adversarial attacks with Importance Sampling (IS), enhancing the assessment’s precision and efficiency. Leveraging adversarial attacks to guide IS, our method efficiently identifies vulnerable…

Cited by 2SourcePDFScholar
2021

Efficient Statistical Assessment of Neural Network Corruption Robustness

NeurIPS 2021poster

We quantify the robustness of a trained network to input uncertainties with a stochastic simulation inspired by the field of Statistical Reliability Engineering. The robustness assessment is cast as a statistical hypothesis test: the network is deemed as locally robust if the estimated probability o…