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May, 2020
稳健图神经网络的图结构学习
Graph Structure Learning for Robust Graph Neural Networks
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Wei Jin, Yao Ma, Xiaorui Liu, Xianfeng Tang, Suhang Wang...
TL;DR
本文探讨了图神经网络在面临敌对攻击时的脆弱性,并提出了一种名为Pro-GNN的框架,以基于真实世界图形的内在属性来联合学习结构性图形和稳健性GNN模型以应对此问题。通过实验表明,Pro-GNN在防御敌对攻击方面表现优异。
Abstract
graph neural networks
(GNNs) are powerful tools in representation learning for graphs. However, recent studies show that GNNs are vulnerable to carefully-crafted perturbations, called
adversarial attacks
.
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