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 951982 of 982 papers

TitleStatusHype
Modeling Event Propagation via Graph Biased Temporal Point Process0
Hybrid Low-order and Higher-order Graph Convolutional Networks0
IsoNN: Isomorphic Neural Network for Graph Representation Learning and ClassificationCode0
DeepTrax: Embedding Graphs of Financial Transactions0
Graph Representation Learning via Hard and Channel-Wise Attention NetworksCode0
Improving Attention Mechanism in Graph Neural Networks via Cardinality PreservationCode0
Identifying Illicit Accounts in Large Scale E-payment Networks -- A Graph Representation Learning Approach0
Towards Interpretable Sparse Graph Representation Learning with Laplacian Pooling0
Graph Convolutional Networks with EigenPoolingCode0
Residual or Gate? Towards Deeper Graph Neural Networks for Inductive Graph Representation Learning0
CommunityGAN: Community Detection with Generative Adversarial NetsCode0
Deep Network Embedding for Graph Representation Learning in Signed NetworksCode0
Dynamic Graph Representation Learning via Self-Attention NetworksCode0
Representation Learning for Spatial Graphs0
Adversarial Classifier for Imbalanced Problems0
Temporal Graph Offset Reconstruction: Towards Temporally Robust Graph Representation LearningCode0
Discriminative Graph Autoencoder0
SGR: Self-Supervised Spectral Graph Representation Learning0
Multi-Task Graph AutoencodersCode0
Adaptive Sampling Towards Fast Graph Representation LearningCode0
dyngraph2vec: Capturing Network Dynamics using Dynamic Graph Representation LearningCode0
Open Domain Question Answering Using Early Fusion of Knowledge Bases and TextCode0
LinkNBed: Multi-Graph Representation Learning with Entity Linkage0
A Multimodal Translation-Based Approach for Knowledge Graph Representation Learning0
Accurate Text-Enhanced Knowledge Graph Representation Learning0
GESF: A Universal Discriminative Mapping Mechanism for Graph Representation Learning0
Hyperbolic Neural NetworksCode0
Feature Propagation on Graph: A New Perspective to Graph Representation Learning0
Learning to Make Predictions on Graphs with AutoencodersCode0
GraphGAN: Graph Representation Learning with Generative Adversarial NetsCode0
Marginalized graph autoencoder for graph clustering0
Deep Feature Learning for Graphs0
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Benchmark Results

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