Papers › Universal Litmus Patterns: Revealing Backdoor Attacks in CNNs

Universal Litmus Patterns: Revealing Backdoor Attacks in CNNs

26 Jun 2019CVPR 2020 6arXiv:1906.10842archive 2025-07-28

Soheil Kolouri, Aniruddha Saha, Hamed Pirsiavash, Heiko Hoffmann

The unprecedented success of deep neural networks in many applications has made these networks a prime target for adversarial exploitation. In this paper, we introduce a benchmark technique for detecting backdoor attacks (aka Trojan attacks) on deep convolutional neural networks (CNNs). We introduce the concept of Universal Litmus Patterns (ULPs), which enable one to reveal backdoor attacks by feeding these universal patterns to the network and analyzing the output (i.e., classifying the network as `clean' or `corrupted'). This detection is fast because it requires only a few forward passes through a CNN. We demonstrate the effectiveness of ULPs for detecting backdoor attacks on thousands of networks with different architectures trained on four benchmark datasets, namely the German Traffic Sign Recognition Benchmark (GTSRB), MNIST, CIFAR10, and Tiny-ImageNet. The codes and train/test models for this paper can be found here https://umbcvision.github.io/Universal-Litmus-Patterns/.

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conv1x1 UMBCvision/Universal-Litmus-Patterns/tiny-imagenet/resnet.py official repository ran · our draft was wrong MIT (permissive) · d9def42110729a85 · report
conv3x3 UMBCvision/Universal-Litmus-Patterns/tiny-imagenet/resnet.py official repository ran · our draft was wrong MIT (permissive) · 160bb14bd76201b4 · report
dataset_append UMBCvision/Universal-Litmus-Patterns/CIFAR-10/train_poisoned_model.py official repository unverified MIT (permissive) · 4289bf8d2ee8ad1b · report
resnet18_mod UMBCvision/Universal-Litmus-Patterns/tiny-imagenet/resnet.py official repository unverified MIT (permissive) · dc6d41d2f5c2016b · report

Tasks

Traffic Sign Recognition

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