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 9761000 of 1949 papers

TitleStatusHype
Deep Partial Multiplex Network Embedding0
On Dyadic Fairness: Exploring and Mitigating Bias in Graph Connections0
Enhancing Cross-domain Link Prediction via Evolution Process Modeling0
One Model for One Graph: A New Perspective for Pretraining with Cross-domain Graphs0
Hyperdimensional Representation Learning for Node Classification and Link Prediction0
One-shot Learning for Temporal Knowledge Graphs0
Deep Representation Learning for Social Network Analysis0
On Large-scale Evaluation of Embedding Models for Knowledge Graph Completion0
Online graph nets0
Online Topology Inference from Streaming Stationary Graph Signals with Partial Connectivity Information0
On Masked Language Models for Contextual Link Prediction0
On Multi-Relational Link Prediction with Bilinear Models0
On Representation Learning for Scientific News Articles Using Heterogeneous Knowledge Graphs0
Deep Sparse Latent Feature Models for Knowledge Graph Completion0
On the Equivalence of Holographic and Complex Embeddings for Link Prediction0
On the ERM Principle with Networked Data0
On the Impact of Feature Heterophily on Link Prediction with Graph Neural Networks0
DeepTrax: Embedding Graphs of Financial Transactions0
On the Model Shrinkage Effect of Gamma Process Edge Partition Models0
Defeats GAN: A Simpler Model Outperforms in Knowledge Representation Learning0
On the use of local structural properties for improving the efficiency of hierarchical community detection methods0
On Understanding Knowledge Graph Representation0
Interpreting Knowledge Graph Relation Representation from Word Embeddings0
Degree-Based Random Walk Approach for Graph Embedding0
DeHIN: A Decentralized Framework for Embedding Large-scale Heterogeneous Information Networks0
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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