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Pascale Gourdeau

3 accepted papers

2022

Sample Complexity Bounds for Robustly Learning Decision Lists against Evasion Attacks

IJCAI 2022poster

A fundamental problem in adversarial machine learning is to quantify how much training data is needed in the presence of evasion attacks. In this paper we address this issue within the framework of PAC learning, focusing on the class of decision lists. Given that distributional assumptions are essen…

Cited by 7SourcePDFScholar
2022

When are Local Queries Useful for Robust Learning?

NeurIPS 2022accept

Distributional assumptions have been shown to be necessary for the robust learnability of concept classes when considering the exact-in-the-ball robust risk and access to random examples by Gourdeau et al. (2019). In this paper, we study learning models where the learner is given more power through…

Cited by 4SourcePDFScholar