SOTAVerified

Graph Learning

Graph learning is a branch of machine learning that focuses on the analysis and interpretation of data represented in graph form. In this context, a graph is a collection of nodes (or vertices) and edges, where nodes represent entities and edges represent the relationships or interactions between these entities. This structure is particularly useful for modeling complex networks found in various domains such as social networks, biological networks, and communication networks.

Graph learning leverages the relationships and structures within the graph to learn and make predictions. It includes techniques like graph neural networks (GNNs), which extend the concept of neural networks to handle graph-structured data. These models are adept at capturing the dependencies and influence of connected nodes, leading to more accurate predictions in scenarios where relationships play a key role.

Key applications of graph learning include recommender systems, drug discovery, social network analysis, and fraud detection. By utilizing the inherent structure of graph data, graph learning algorithms can uncover deep insights and patterns that are not apparent with traditional machine learning approaches.

Papers

Showing 961970 of 1570 papers

TitleStatusHype
A Unified Framework for Optimization-Based Graph Coarsening0
Gradient Gating for Deep Multi-Rate Learning on GraphsCode1
A Unified Framework against Topology and Class ImbalanceCode0
DynGL-SDP: Dynamic Graph Learning for Semantic Dependency ParsingCode0
Contrastive Graph Few-Shot Learning0
Consensus Knowledge Graph Learning via Multi-view Sparse Low Rank Block Model0
Enabling Homogeneous GNNs to Handle Heterogeneous Graphs via Relation Embedding0
Gradual Weisfeiler-Leman: Slow and Steady Wins the RaceCode0
Low-Rank Covariance Completion for Graph Quilting with Applications to Functional Connectivity0
Flashlight: Scalable Link Prediction with Effective Decoders0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1HaloGraphNetR^20.97Unverified