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SAM: Query-efficient Adversarial Attacks against Graph Neural Networks

  • University of Technology Sydney
  • Southern University of Science and Technology
  • University of York

Research output: Contribution to journalArticlepeer-review

Abstract

Recent studies indicate that Graph Neural Networks (GNNs) are vulnerable to adversarial attacks. Particularly, adversarially perturbing the graph structure, e.g., flipping edges, can lead to salient degeneration of GNNs' accuracy. In general, efficiency and stealthiness are two significant metrics to evaluate an attack method in practical use. However, most prevailing graph structure-based attack methods are query intensive, which impacts their practical use. Furthermore, while the stealthiness of perturbations has been discussed in previous studies, the majority of them focus on the attack scenario targeting a single node. To fill the research gap, we present a global attack method against GNNs, Saturation adversarial Attack with Meta-gradient, in this article. We first propose an enhanced meta-learning-based optimization method to obtain useful gradient information concerning graph structural perturbations. Then, leveraging the notion of saturation attack, we devise an effective algorithm to determine the perturbations based on the derived meta-gradients. Meanwhile, to ensure stealthiness, we introduce a similarity constraint to suppress the number of perturbed edges. Thorough experiments demonstrate that our method can effectively depreciate the accuracy of GNNs with a small number of queries. While achieving a higher misclassification rate, we also show that the perturbations developed by our method are not noticeable.

Original languageEnglish
Article number49
JournalACM Transactions on Privacy and Security
Volume26
Issue number4
DOIs
StatePublished - 13 Nov 2023
Externally publishedYes

Keywords

  • Adversarial attack
  • graph neural network
  • poisoning attack
  • topology attack

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