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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 121130 of 151 papers

TitleStatusHype
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
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