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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 131140 of 151 papers

TitleStatusHype
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
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