Proceedings of the 30th ACM International Conference on Multimedia · 2022 · 32 citations · 20 references
Convolutional Neural NetworkCryptographic PrimitiveEngineeringMachine LearningInformation SecurityInformation ForensicsImage ClassificationImage AnalysisPattern RecognitionDeep HashingPerceptual HashingBackdoor AttackCryptanalysisFeature LearningData PrivacyHash FunctionComputer ScienceInvisible Backdoor AttacksDeep LearningComputer VisionData SecurityDeep Neural NetworksAttack Model
Due to its powerful feature learning capability and high efficiency, deep hashing has achieved great success in large-scale image retrieval. Meanwhile, extensive works have demonstrated that deep neural networks (DNNs) are susceptible to adversarial examples, and exploring adversarial attack against deep hashing has attracted many research efforts. Nevertheless, backdoor attack, another famous threat to DNNs, has not been studied for deep hashing yet. Although various backdoor attacks have been proposed in the field of image classification, existing approaches failed to realize a truly imperceptive backdoor attack that enjoys invisible triggers and clean label setting simultaneously, and they cannot meet the intrinsic demand of image retrieval backdoor.
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ImageNet Large Scale Visual Recognition Challenge
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Convolutional Neural Network, Engineering, Machine Learning +18