The hammer and the nut: is bilevel optimization really needed to poison linear classifiers?

Demontis A.;Biggio B.;Roli F.;
2021-01-01

Abstract

One of the most concerning threats for modern AI systems is data poisoning, where the attacker injects maliciously crafted training data to corrupt the system's behavior at test time. Availability poisoning is a particularly worrisome subset of poisoning attacks where the attacker aims to cause a Denial-of-Service (DoS) attack. However, the state-of-the-art algorithms are computationally expensive because they try to solve a complex bi-level optimization problem (the 'hammer'). We observed that in particular conditions, namely, where the target model is linear (the 'nut'), the usage of computationally costly procedures can be avoided. We propose a counter-intuitive but efficient heuristic that allows contaminating the training set such that the target system's performance is highly compromised. We further suggest a re-parameterization trick to decrease the number of variables to be optimized. Finally, we demonstrate that, under the considered settings, our framework achieves comparable, or even better, performances in terms of the attacker's objective while being significantly more computationally efficient.
2021
Inglese
2021 International Joint Conference on Neural Networks (IJCNN)
978-1-6654-3900-8
1-66544-597-1
IEEE, Institute of Electrical and Electronics Engineers
1
8
8
2021 International Joint Conference on Neural Networks, IJCNN 2021
Esperti anonimi
18-23 July 2021
Shenzhen, China
internazionale
scientifica
Adversarial machine learning; Data poisoning; Secure AI
no
4 Contributo in Atti di Convegno (Proceeding)::4.1 Contributo in Atti di convegno
Cina, A. E.; Vascon, S.; Demontis, A.; Biggio, B.; Roli, F.; Pelillo, M.
273
6
4.1 Contributo in Atti di convegno
partially_open
info:eu-repo/semantics/conferencePaper
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