SOTAVerified

Graph Representation Learning

The goal of Graph Representation Learning is to construct a set of features (‘embeddings’) representing the structure of the graph and the data thereon. We can distinguish among Node-wise embeddings, representing each node of the graph, Edge-wise embeddings, representing each edge in the graph, and Graph-wise embeddings representing the graph as a whole.

Source: SIGN: Scalable Inception Graph Neural Networks

Papers

Showing 651700 of 982 papers

TitleStatusHype
Graph4Rec: A Universal Toolkit with Graph Neural Networks for Recommender SystemsCode2
Do Transformers Really Perform Badly for Graph Representation?Code0
Graph Neural Networks with Adaptive ResidualCode1
Hierarchical Prototype Networks for Continual Graph Representation Learning0
HGATE: Heterogeneous Graph Attention Auto-EncodersCode1
On the combination of graph data for assessing thin-file borrowers' creditworthiness0
Multi-fidelity Stability for Graph Representation Learning0
Towards Graph Self-Supervised Learning with Contrastive Adjusted Zooming0
DyFormer: A Scalable Dynamic Graph Transformer with Provable Benefits on Generalization Ability0
Structure and Features Fusion with Evidential Graph Convolutional Neural Network for Node Classification0
Pre-training Graph Neural Network for Cross Domain Recommendation0
CN-Motifs Perceptive Graph Neural Networks0
Implicit SVD for Graph Representation LearningCode1
Inferential SIR-GN: Scalable Graph Representation Learning0
CGCL: Collaborative Graph Contrastive Learning without Handcrafted Graph Data AugmentationsCode0
Augmentations in Graph Contrastive Learning: Current Methodological Flaws & Towards Better Practices0
Knowledge Graph Representation Learning using Ordinary Differential Equations0
Geo-BERT Pre-training Model for Query Rewriting in POI Search0
RMNA: A Neighbor Aggregation-Based Knowledge Graph Representation Learning Model Using Rule MiningCode0
Hierarchical Heterogeneous Graph Representation Learning for Short Text ClassificationCode1
InfoGCL: Information-Aware Graph Contrastive Learning0
Graph Communal Contrastive LearningCode0
Pairwise Half-graph Discrimination: A Simple Graph-level Self-supervised Strategy for Pre-training Graph Neural Networks0
Tackling the Local Bias in Federated Graph Learning0
LMSOC: An Approach for Socially Sensitive PretrainingCode1
DPGNN: Dual-Perception Graph Neural Network for Representation Learning0
Asymmetric Graph Representation Learning0
MGC: A Complex-Valued Graph Convolutional Network for Directed GraphsCode0
Residual2Vec: Debiasing graph embedding with random graphsCode0
Graph-Fraudster: Adversarial Attacks on Graph Neural Network Based Vertical Federated LearningCode1
GRAPE for Fast and Scalable Graph Processing and random walk-based EmbeddingCode1
GCN-SE: Attention as Explainability for Node Classification in Dynamic Graphs0
Pre-training Molecular Graph Representation with 3D GeometryCode1
Relation Prediction as an Auxiliary Training Objective for Improving Multi-Relational Graph RepresentationsCode1
Cycle Representation Learning for Inductive Relation PredictionCode0
Revisiting SVD to generate powerful Node Embeddings for Recommendation Systems0
Wireless Link Scheduling via Graph Representation Learning: A Comparative Study of Different Supervision LevelsCode0
Graph Representation Learning for Spatial Image Steganalysis0
Reconstruction for Powerful Graph Representations0
Learning Compact Representations of Neural Networks using DiscriminAtive Masking (DAM)Code1
Using Graph Representation Learning with Schema Encoders to Measure the Severity of Depressive Symptoms0
SpecTRA: Spectral Transformer for Graph Representation Learning0
GLASS: GNN with Labeling Tricks for Subgraph Representation Learning0
BCDR: Betweenness Centrality-based Distance Resampling for Graph Shortest Distance Embedding0
A Transferable General-Purpose Predictor for Neural Architecture Search0
Scalable Hierarchical Embeddings of Complex Networks0
Interrogating Paradigms in Self-supervised Graph Representation Learning0
Towards Feature Overcorrelation in Deeper Graph Neural Networks0
A Deep Latent Space Model for Directed Graph Representation Learning0
EBSD Grain Knowledge Graph Representation Learning for Material Structure-Property Prediction0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Pi-net-linearError (mm)0.47Unverified