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Network Embedding

Network Embedding, also known as "Network Representation Learning", is a collective term for techniques for mapping graph nodes to vectors of real numbers in a multidimensional space. To be useful, a good embedding should preserve the structure of the graph. The vectors can then be used as input to various network and graph analysis tasks, such as link prediction

Source: Tutorial on NLP-Inspired Network Embedding

Papers

Showing 251275 of 403 papers

TitleStatusHype
BHIN2vec: Balancing the Type of Relation in Heterogeneous Information Network0
Time-aware Gradient Attack on Dynamic Network Link Prediction0
Hyperbolic Multiplex Network Embedding with Maps of Random Walk0
RWNE: A Scalable Random-Walk-Based Network Embedding Framework with Personalized Higher-Order Proximity PreservedCode0
Unsupervised Attributed Multiplex Network EmbeddingCode0
On Network Embedding for Machine Learning on Road Networks: A Case Study on the Danish Road Network0
weg2vec: Event embedding for temporal networks0
Dynamic Graph Embedding via LSTM History Tracking0
News2vec: News Network Embedding with Subnode Information0
Hyperbolic Node Embedding for Signed Networks0
Network2Vec Learning Node Representation Based on Space Mapping in Networks0
Tutorial on NLP-Inspired Network Embedding0
RiWalk: Fast Structural Node Embedding via Role IdentificationCode0
Dynamic Embedding on Textual Networks via a Gaussian ProcessCode0
Improving Textual Network Learning with Variational Homophilic EmbeddingsCode0
Neural Embedding Propagation on Heterogeneous NetworksCode0
Multi-scale Attributed Node EmbeddingCode0
Selective Network Discovery via Deep Reinforcement Learning on Embedded Spaces0
Temporal Network Embedding with Micro- and Macro-dynamicsCode0
HeteSpaceyWalk: A Heterogeneous Spacey Random Walk for Heterogeneous Information Network Embedding0
Initialization for Network Embedding: A Graph Partition Approach0
NETR-Tree: An Eifficient Framework for Social-Based Time-Aware Spatial Keyword Query0
On Proximity and Structural Role-based Embeddings in Networks: Misconceptions, Techniques, and Applications0
LEAP nets for power grid perturbationsCode0
MEGAN: A Generative Adversarial Network for Multi-View Network Embedding0
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