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  • title: A2: Efficient Automated Attacker for Boosting Adversarial Training
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            A2: Efficient Automated Attacker for Boosting Adversarial Training
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            A2: Efficient Automated Attacker for Boosting Adversarial Training

            Dec 6, 2022

            Speakers

            ZX

            Zhuoer Xu

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            GZ

            Guanghui Zhu

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            CM

            Changhua Meng

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            About

            Based on the significant improvement of model robustness by AT (Adversarial Training), various variants have been proposed to further boost the performance. Well-recognized methods have focused on different components of AT (e.g., designing loss functions and leveraging additional unlabeled data). It is generally accepted that stronger perturbations yield more robust models.However, how to generate stronger perturbations efficiently is still missed. In this paper, we propose an efficient automat…

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            NeurIPS 2022

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