DeBackdoor: A Deductive Framework for Detecting Backdoor Attacks on Deep Models with Limited Data
Dorde Popovic, Amin Sadeghi, Ting Yu, Sanjay Chawla, Issa Khalil
摘要
Backdoor attacks are among the most effective, practical, and stealthy attacks in deep learning. In this paper, we consider a practical scenario where a developer obtains a deep model from a third party and uses it as part of a safety-critical system. The developer wants to inspect the model for potential backdoors prior to system deployment. We find that most existing detection techniques make assumptions that are not applicable to this scenario. In this paper, we present a novel framework for detecting backdoors under realistic restrictions. We generate candidate triggers by deductively searching over the space of possible triggers. We construct and optimize a smoothed version of Attack Success Rate as our search objective. Starting from a broad class of template attacks and just using the forward pass of a deep model, we reverse engineer the backdoor attack. We conduct extensive evaluation on a wide range of attacks, models, and datasets, with our technique performing almost perfectly across these settings.
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- Neural Cleanse: Identifying and Mitigating Backdoor Attacks in Neural NetworksBolun Wang, Yuanshun Yao, Shawn Shan, Huiying Li 等S&P 2019 · 被引用 1,801 次
- Hidden Trigger Backdoor AttacksAniruddha Saha, Akshayvarun Subramanya, Hamed PirsiavashAAAI 2020 · 被引用 743 次
- ABS: Scanning Neural Networks for Back-doors by Artificial Brain StimulationYingqi Liu, Wen-Chuan Lee, Guanhong Tao, Shiqing Ma 等CCS 2019 · 被引用 531 次
- Adversarial Neuron Pruning Purifies Backdoored Deep ModelsDongxian Wu, Yisen WangNeurIPS 2021 · 被引用 441 次
- Detecting AI Trojans Using Meta Neural AnalysisXiaojun Xu, Qi Wang, Huichen Li, Nikita Borisov 等S&P 2021 · 被引用 381 次
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