Papers › Label-Consistent Backdoor Attacks

Label-Consistent Backdoor Attacks

5 Dec 2019arXiv:1912.02771archive 2025-07-28

Alexander Turner, Dimitris Tsipras, Aleksander Madry

Deep neural networks have been demonstrated to be vulnerable to backdoor attacks. Specifically, by injecting a small number of maliciously constructed inputs into the training set, an adversary is able to plant a backdoor into the trained model. This backdoor can then be activated during inference by a backdoor trigger to fully control the model's behavior. While such attacks are very effective, they crucially rely on the adversary injecting arbitrary inputs that are---often blatantly---mislabeled. Such samples would raise suspicion upon human inspection, potentially revealing the attack. Thus, for backdoor attacks to remain undetected, it is crucial that they maintain label-consistency---the condition that injected inputs are consistent with their labels. In this work, we leverage adversarial perturbations and generative models to execute efficient, yet label-consistent, backdoor attacks. Our approach is based on injecting inputs that appear plausible, yet are hard to classify, hence causing the model to rely on the (easier-to-learn) backdoor trigger.

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batch_norm_relu MadryLab/label-consistent-backdoor-code/resnet_model.py community (archive-listed) unverified MIT (permissive) · 9706443682a91ab9 · report
choose MadryLab/label-consistent-backdoor-code/resnet_model.py community (archive-listed) unverified MIT (permissive) · e10222ca74d607cb · report
make_data_augmentation_fn MadryLab/label-consistent-backdoor-code/resnet_model.py community (archive-listed) unverified MIT (permissive) · ab15a201846bd111 · report

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