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Backdoor Attacks to Pre-trained Unified Foundation Models (2302.09360v3)

Published 18 Feb 2023 in cs.CR

Abstract: The rise of pre-trained unified foundation models breaks down the barriers between different modalities and tasks, providing comprehensive support to users with unified architectures. However, the backdoor attack on pre-trained models poses a serious threat to their security. Previous research on backdoor attacks has been limited to uni-modal tasks or single tasks across modalities, making it inapplicable to unified foundation models. In this paper, we make proof-of-concept level research on the backdoor attack for pre-trained unified foundation models. Through preliminary experiments on NLP and CV classification tasks, we reveal the vulnerability of these models and suggest future research directions for enhancing the attack approach.

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Authors (5)
  1. Zenghui Yuan (8 papers)
  2. Yixin Liu (108 papers)
  3. Kai Zhang (542 papers)
  4. Pan Zhou (220 papers)
  5. Lichao Sun (186 papers)
Citations (8)

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