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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence

A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks

February 1, 2023

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Authors

Jinghui Chen

University of California, Los Angeles


Dongruo Zhou

University of California, Los Angeles


Jinfeng Yi

JD AI Research


Quanquan Gu

University of California, Los Angeles


DOI:

10.1609/aaai.v34i04.5753


Abstract:

Depending on how much information an adversary can access to, adversarial attacks can be classified as white-box attack and black-box attack. For white-box attack, optimization-based attack algorithms such as projected gradient descent (PGD) can achieve relatively high attack success rates within moderate iterates. However, they tend to generate adversarial examples near or upon the boundary of the perturbation set, resulting in large distortion. Furthermore, their corresponding black-box attack algorithms also suffer from high query complexities, thereby limiting their practical usefulness. In this paper, we focus on the problem of developing efficient and effective optimization-based adversarial attack algorithms. In particular, we propose a novel adversarial attack framework for both white-box and black-box settings based on a variant of Frank-Wolfe algorithm. We show in theory that the proposed attack algorithms are efficient with an O(1/√T) convergence rate. The empirical results of attacking the ImageNet and MNIST datasets also verify the efficiency and effectiveness of the proposed algorithms. More specifically, our proposed algorithms attain the best attack performances in both white-box and black-box attacks among all baselines, and are more time and query efficient than the state-of-the-art.

Topics: AAAI

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HOW TO CITE:

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks Proceedings of the AAAI Conference on Artificial Intelligence (2020) 3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks AAAI 2020, 3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu (2020). A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks. Proceedings of the AAAI Conference on Artificial Intelligence, 3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks. Proceedings of the AAAI Conference on Artificial Intelligence 2020 p.3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. 2020. A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks. "Proceedings of the AAAI Conference on Artificial Intelligence". 3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. (2020) "A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks", Proceedings of the AAAI Conference on Artificial Intelligence, p.3486-3494

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu, "A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks", AAAI, p.3486-3494, 2020.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. "A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks". Proceedings of the AAAI Conference on Artificial Intelligence, 2020, p.3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. "A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks". Proceedings of the AAAI Conference on Artificial Intelligence, (2020): 3486-3494.

Jinghui Chen||Dongruo Zhou||Jinfeng Yi||Quanquan Gu. A Frank-Wolfe Framework for Efficient and Effective Adversarial Attacks. AAAI[Internet]. 2020[cited 2023]; 3486-3494.


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
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