Publication | Closed Access
MagNet
1K
Citations
25
References
2017
Year
Unknown Venue
Artificial IntelligenceAdversarial ExamplesDeepfake DetectionMachine LearningData ScienceImpressive PerformanceEngineeringAttack ModelAi FoundationAdversarial Machine LearningAi SafetyComputer ScienceDeep Learning
Deep learning has shown impressive performance on hard perceptual problems. However, researchers found deep learning systems to be vulnerable to small, specially crafted perturbations that are imperceptible to humans. Such perturbations cause deep learning systems to mis-classify adversarial examples, with potentially disastrous consequences where safety or security is crucial. Prior defenses against adversarial examples either targeted specific attacks or were shown to be ineffective.
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