SOTAVerified

Model extraction

Model extraction attacks, aka model stealing attacks, are used to extract the parameters from the target model. Ideally, the adversary will be able to steal and replicate a model that will have a very similar performance to the target model.

Papers

Showing 171176 of 176 papers

TitleStatusHype
Fault Injection and Safe-Error Attack for Extraction of Embedded Neural Network Models0
FDINet: Protecting against DNN Model Extraction via Feature Distortion Index0
Few-shot Model Extraction Attacks against Sequential Recommender Systems0
Fingerprinting Deep Neural Networks Globally via Universal Adversarial Perturbations0
First to Possess His Statistics: Data-Free Model Extraction Attack on Tabular Data0
"FRAME: Forward Recursive Adaptive Model Extraction -- A Technique for Advance Feature Selection"0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1three-step-originalExact Match0.17Unverified