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Meiqi Zhu

1 accepted papers

2022

Robust Heterogeneous Graph Neural Networks against Adversarial Attacks

AAAI 2022technical

Heterogeneous Graph Neural Networks (HGNNs) have drawn increasing attention in recent years and achieved outstanding performance in many tasks. However, despite their wide use, there is currently no understanding of their robustness to adversarial attacks. In this work, we first systematically study…

Cited by 64SourcePDFScholar