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Paper

GraphIP-Bench: How Hard Is It to Steal a Graph Neural Network, and Can We Stop It?

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AI summary

arXiv:2605. 12827v1 Announce Type: new Abstract: Graph neural networks (GNNs) deployed as cloud services can be \emph{stolen} through \emph{model-extraction attacks}, which train a surrogate from query responses to reproduce the target's behaviour, and a growing line of ownership defenses tries to prevent or trace such theft.