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Entity Embeddings

Entity Embeddings is a technique for applying deep learning to tabular data. It involves representing the categorical data of an information systems entity with multiple dimensions.

Papers

Showing 101150 of 151 papers

TitleStatusHype
Relation Extraction with Contextualized Relation Embedding (CRE)Code0
DisenE: Disentangling Knowledge Graph Embeddings0
Content-Based Personalized Recommender System Using Entity Embeddings0
Entity Embedding as Game Representation0
DensE: An Enhanced Non-commutative Representation for Knowledge Graph Embedding with Adaptive Semantic HierarchyCode0
Dual Graph Embedding for Object-Tag LinkPrediction on the Knowledge Graph0
Neural Entity Linking: A Survey of Models Based on Deep Learning0
Interpretable Entity Representations through Large-Scale Typing0
Leveraging Prior Knowledge for Protein-Protein Interaction Extraction with Memory Network0
Improving Entity Linking by Modeling Latent Entity Type Information0
Knowledge-guided Convolutional Networks for Chemical-Disease Relation Extraction0
Self-Attention Enhanced Selective Gate with Entity-Aware Embedding for Distantly Supervised Relation Extraction0
CNN-based Dual-Chain Models for Knowledge Graph Learning0
KEPLER: A Unified Model for Knowledge Embedding and Pre-trained Language RepresentationCode0
E-BERT: Efficient-Yet-Effective Entity Embeddings for BERTCode0
A Neural Pipeline Approach for the PharmaCoNER Shared Task using Contextual Exhaustive Models0
KRED: Knowledge-Aware Document Representation for News RecommendationsCode0
Aligning Cross-Lingual Entities with Multi-Aspect InformationCode0
TransGCN:Coupling Transformation Assumptions with Graph Convolutional Networks for Link Prediction0
Jointly Learning Entity and Relation Representations for Entity AlignmentCode0
A Deep Learning System for Predicting Size and Fit in Fashion E-CommerceCode0
Neural Relation Extraction for Knowledge Base Enrichment0
Merge and Label: A novel neural network architecture for nested NERCode0
Knowledge Hypergraphs: Prediction Beyond Binary RelationsCode0
Learning Relational Representations by Analogy using Hierarchical Siamese Networks0
Abstract Graphs and Abstract Paths for Knowledge Graph Completion0
Table2Vec: Neural Word and Entity Embeddings for Table Population and RetrievalCode0
Cross-lingual Knowledge Graph Alignment via Graph Matching Neural NetworkCode0
Multi-relational Poincaré Graph EmbeddingsCode0
RelWalk -- A Latent Variable Model Approach to Knowledge Graph Embedding0
Iteratively Learning Embeddings and Rules for Knowledge Graph Reasoning0
Word Embeddings for Entity-annotated TextsCode0
End-to-End Neural Entity LinkingCode0
Knowledge Representation with Conceptual Spaces0
Clinical Text Classification with Rule-based Features and Knowledge-guided Convolutional Neural Networks0
ELDEN: Improved Entity Linking Using Densified Knowledge GraphsCode0
Fast and scalable learning of neuro-symbolic representations of biomedical knowledge0
Incorporating Literals into Knowledge Graph EmbeddingsCode0
DeepType: Multilingual Entity Linking by Neural Type System EvolutionCode0
TorusE: Knowledge Graph Embedding on a Lie Group0
Convolutional Neural Knowledge Graph Learning0
Matching Web Tables with Knowledge Base Entities: From Entity Lookups to Entity Embeddings0
Named Entity Disambiguation for Noisy TextCode0
Apprendre des repr\'esentations jointes de mots et d'entit\'es pour la d\'esambigu\" d'entit\'es (Combining Word and Entity Embeddings for Entity Linking)0
Know-Evolve: Deep Temporal Reasoning for Dynamic Knowledge GraphsCode0
Supervised Typing of Big Graphs using Semantic Embeddings0
DAWT: Densely Annotated Wikipedia Texts across multiple languages0
Multi-level Representations for Fine-Grained Typing of Knowledge Base Entities0
Leveraging Lexical Resources for Learning Entity Embeddings in Multi-Relational Data0
Entity Embeddings of Categorical VariablesCode0
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