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Word Embeddings

Word embedding is the collective name for a set of language modeling and feature learning techniques in natural language processing (NLP) where words or phrases from the vocabulary are mapped to vectors of real numbers.

Techniques for learning word embeddings can include Word2Vec, GloVe, and other neural network-based approaches that train on an NLP task such as language modeling or document classification.

( Image credit: Dynamic Word Embedding for Evolving Semantic Discovery )

Papers

Showing 11011125 of 4002 papers

TitleStatusHype
Aligning Visual Prototypes with BERT Embeddings for Few-Shot Learning0
Variational Gaussian Topic Model with Invertible Neural Projections0
TF-IDF vs Word Embeddings for Morbidity Identification in Clinical Notes: An Initial StudyCode0
An Automated Method to Enrich Consumer Health Vocabularies Using GloVe Word Embeddings and An Auxiliary Lexical Resource0
WOVe: Incorporating Word Order in GloVe Word Embeddings0
Revisiting Additive Compositionality: AND, OR and NOT Operations with Word Embeddings0
KECRS: Towards Knowledge-Enriched Conversational Recommendation System0
Coming to its senses: Lessons learned from Approximating Retrofitted BERT representations for Word Sense information0
Empirical Analysis of Image Caption Generation using Deep Learning0
Multilingual Offensive Language Identification for Low-resource Languages0
Evaluation Of Word Embeddings From Large-Scale French Web ContentCode0
Large-scale Taxonomy Induction Using Entity and Word Embeddings0
GraphTMT: Unsupervised Graph-based Topic Modeling from Video TranscriptsCode0
Discourse Relation Embeddings: Representing the Relations between Discourse Segments in Social MediaCode0
Impact of Gender Debiased Word Embeddings in Language Modeling0
Learning to Lemmatize in the Word Representation Space0
Cross-lingual hate speech detection based on multilingual domain-specific word embeddings0
Mitigating Political Bias in Language Models Through Reinforced Calibration0
A Bi-Encoder LSTM Model For Learning Unstructured DialogsCode0
A Short Survey of Pre-trained Language Models for Conversational AI-A NewAge in NLP0
Words with Consistent Diachronic Usage Patterns are Learned Earlier: A Computational Analysis Using Temporally Aligned Word EmbeddingsCode0
Deep Clustering with Measure Propagation0
From Fully Trained to Fully Random Embeddings: Improving Neural Machine Translation with Compact Word Embedding Tables0
Group-Sparse Matrix Factorization for Transfer Learning of Word Embeddings0
Multi-source Neural Topic Modeling in Multi-view Embedding SpacesCode0
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