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Blind Backdoors in Deep Learning Models

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arxiv 2005.03823 v4 pith:CFSB4K47 submitted 2020-05-08 cs.CR cs.CVcs.LG

classification cs.CRcs.CVcs.LG
keywords backdoorsattackblindcodemodelmodelstraininglearning
verification ladder T0 review T1 audit T2 compute T3 formal
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We investigate a new method for injecting backdoors into machine learning models, based on compromising the loss-value computation in the model-training code. We use it to demonstrate new classes of backdoors strictly more powerful than those in the prior literature: single-pixel and physical backdoors in ImageNet models, backdoors that switch the model to a covert, privacy-violating task, and backdoors that do not require inference-time input modifications. Our attack is blind: the attacker cannot modify the training data, nor observe the execution of his code, nor access the resulting model. The attack code creates poisoned training inputs "on the fly," as the model is training, and uses multi-objective optimization to achieve high accuracy on both the main and backdoor tasks. We show how a blind attack can evade any known defense and propose new ones.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A Survey on Backdoor Threats in Large Language Models (LLMs): Attacks, Defenses, and Evaluations

    cs.CR 2025-02 conditional novelty 2.0 of 10

    A literature review that taxonomizes LLM backdoor attacks and defenses by model construction phase, with no new experimental results.

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