SOTAVerified

Link Prediction

Link Prediction is a task in graph and network analysis where the goal is to predict missing or future connections between nodes in a network. Given a partially observed network, the goal of link prediction is to infer which links are most likely to be added or missing based on the observed connections and the structure of the network.

( Image credit: Inductive Representation Learning on Large Graphs )

Papers

Showing 11761200 of 1949 papers

TitleStatusHype
Scalable Hierarchical Embeddings of Complex Networks0
Equivariant Heterogeneous Graph Networks0
Few-shot graph link prediction with domain adaptation0
MULTI-LEVEL APPROACH TO ACCURATE AND SCALABLE HYPERGRAPH EMBEDDING0
End-to-End Learning of Probabilistic Hierarchies on Graphs0
ConTIG: Continuous Representation Learning on Temporal Interaction Graphs0
Updating Embeddings for Dynamic Knowledge Graphs0
mGNN: Generalizing the Graph Neural Networks to the Multilayer Case0
wsGAT: Weighted and Signed Graph Attention Networks for Link Prediction0
Harnessing the Power of Ego Network Layers for Link Prediction in Online Social Networks0
Efficient Variational Graph Autoencoders for Unsupervised Cross-domain Prerequisite Chains0
HeMI: Multi-view Embedding in Heterogeneous GraphsCode0
r-GAT: Relational Graph Attention Network for Multi-Relational Graphs0
Ergodic Limits, Relaxations, and Geometric Properties of Random Walk Node Embeddings0
QUINT: Node embedding using network hashing0
HMSG: Heterogeneous Graph Neural Network based on Metapath Subgraph Learning0
Job Posting-Enriched Knowledge Graph for Skills-based Matching0
Discussion Structure Prediction Based on a Two-step Method0
Heterogeneous Graph Neural Network with Multi-view Representation Learning0
Influence-guided Data Augmentation for Neural Tensor CompletionCode0
Integrating Transductive And Inductive Embeddings Improves Link Prediction Accuracy0
Temporal Network Embedding via Tensor Factorization0
Unsupervised Domain-adaptive Hash for Networks0
Semi-supervised Network Embedding with Differentiable Deep Quantisation0
Temporal Graph Network Embedding with Causal Anonymous Walks RepresentationsCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1AutoKGEHits@100.56Unverified
2CP-N3-RPHits@100.55Unverified
3DistMult (after variational EM)Hits@100.55Unverified
4KG-R3Hits@100.54Unverified
5LASSHits@100.53Unverified
6MDE_advHits@100.53Unverified
7GFA-NNHits@100.52Unverified
8KGRefinerHits@100.49Unverified
9ComplEx NSCachingHits@100.48Unverified
10LogicENNHits@100.47Unverified
#ModelMetricClaimedVerifiedStatus
1MoCoKGCHits@100.88Unverified
2KERMITHits@100.83Unverified
3MoCoSAHits@100.82Unverified
4SimKGCIB(+PB+SN)Hits@100.82Unverified
5C-LMKE(bert-base)Hits@100.79Unverified
6LASSHits@100.79Unverified
7LP-BERTHits@100.75Unverified
8KGLMHits@100.74Unverified
9StAR(Self-Adp)Hits@100.71Unverified
10PALTHits@100.69Unverified
#ModelMetricClaimedVerifiedStatus
1OpenKE (han2018openke)training time (s)11Unverified
2LibKGE (ruffinelli2020you)training time (s)10Unverified
3GraphVite (zhu2019graphvite)training time (s)6Unverified
4Inverse ModelHits@100.96Unverified
5QuatDEHits@100.96Unverified
6LineaREHits@100.96Unverified
7AutoKGEHits@100.96Unverified
8MEI (small)Hits@100.96Unverified
9ComplEx-N3 (reciprocal)Hits@100.96Unverified
10RotatEHits@100.96Unverified
#ModelMetricClaimedVerifiedStatus
1OPTransEHits@100.9Unverified
2AutoKGEMRR0.86Unverified
3ComplEx-N3 (reciprocal)MRR0.86Unverified
4LineaREMRR0.84Unverified
5DistMult (after variational EM)MRR0.84Unverified
6QuatEMRR0.83Unverified
7SEEKMRR0.83Unverified
8MEI-BTDMRR0.81Unverified
9MEI (small)MRR0.8Unverified
10pRotatEMRR0.8Unverified