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Link Prediction On Cora

评估指标

AP
AUC

评测结果

各个模型在此基准测试上的表现结果

模型名称
AP
AUC
Paper TitleRepository
BANE93.2%93.50%Rethinking Kernel Methods for Node Representation Learning on Graphs-
NBFNet96.2%95.6%Neural Bellman-Ford Networks: A General Graph Neural Network Framework for Link Prediction-
Graph InfoClust (GIC)93.3%93.5%Binarized Attributed Network Embedding
S-VGAE94.1%94.1%Hyperspherical Variational Auto-Encoders-
VGNAE95.8%95.4%Variational Graph Normalized Auto-Encoders-
Walkpooling96.0%95.9%Neural Link Prediction with Walk Pooling-
NESS98.71%98.46%NESS: Node Embeddings from Static SubGraphs-
GNAE95.7%95.6%Variational Graph Normalized Auto-Encoders-
ARGE93.2%92.4%Adversarially Regularized Graph Autoencoder for Graph Embedding-
Variational graph auto-encoders--Variational Graph Auto-Encoders-
sGraphite-VAE93.5%93.7%Graph InfoClust: Leveraging cluster-level node information for unsupervised graph representation learning-
PPPNE93.9%92.5%PPPNE: Personalized proximity preserved network embedding-
MTGAE--Multi-Task Graph Autoencoders-
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