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 251275 of 982 papers

TitleStatusHype
A Survey on Temporal Interaction Graph Representation Learning: Progress, Challenges, and Opportunities0
Multi-Granular Attention based Heterogeneous Hypergraph Neural Network0
GRAPE: Heterogeneous Graph Representation Learning for Genetic Perturbation with Coding and Non-Coding Biotype0
Multimodal Graph Representation Learning for Robust Surgical Workflow Recognition with Adversarial Feature Disentanglement0
ABG-NAS: Adaptive Bayesian Genetic Neural Architecture Search for Graph Representation LearningCode0
OmniSage: Large Scale, Multi-Entity Heterogeneous Graph Representation Learning0
GT-SVQ: A Linear-Time Graph Transformer for Node Classification Using Spiking Vector QuantizationCode0
Multimodal Spatio-temporal Graph Learning for Alignment-free RGBT Video Object Detection0
Local Distance-Preserving Node Embeddings and Their Performance on Random GraphsCode0
Leveraging Auto-Distillation and Generative Self-Supervised Learning in Residual Graph Transformers for Enhanced Recommender Systems0
Node Embeddings via Neighbor Embeddings0
Inductive Graph Representation Learning with Quantum Graph Neural Networks0
LGIN: Defining an Approximately Powerful Hyperbolic GNNCode0
MSNGO: multi-species protein function annotation based on 3D protein structure and network propagationCode0
AugWard: Augmentation-Aware Representation Learning for Accurate Graph ClassificationCode0
Graph-Based Re-ranking: Emerging Techniques, Limitations, and Opportunities0
Multi-View Node Pruning for Accurate Graph Representation0
Fine-tuning Vision Language Models with Graph-based Knowledge for Explainable Medical Image Analysis0
Diffusion Model Agnostic Social Influence Maximization in Hyperbolic Space0
Democratizing Large Language Model-Based Graph Data Augmentation via Latent Knowledge GraphsCode0
Graph Neural Network-based Spectral Filtering Mechanism for Imbalance Classification in Network Digital Twin0
DICE: Device-level Integrated Circuits Encoder with Graph Contrastive PretrainingCode0
Graph Contrastive Learning for Connectome ClassificationCode0
Deep Active Learning based Experimental Design to Uncover Synergistic Genetic Interactions for Host Targeted Therapeutics0
Leveraging Joint Predictive Embedding and Bayesian Inference in Graph Self Supervised LearningCode0
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Benchmark Results

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