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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 28512875 of 4002 papers

TitleStatusHype
Closed Form Word Embedding Alignment0
Abstractive Document Summarization with Word Embedding Reconstruction0
Abstractive Text Summarization: Enhancing Sequence-to-Sequence Models Using Word Sense Disambiguation and Semantic Content Generalization0
Abusive language in Spanish children and young teenager's conversations: data preparation and short text classification with contextual word embeddings0
A Call for More Rigor in Unsupervised Cross-lingual Learning0
A Case Study to Reveal if an Area of Interest has a Trend in Ongoing Tweets Using Word and Sentence Embeddings0
A* CCG Parsing with a Supertag-factored Model0
Accurate Dependency Parsing and Tagging of Latin0
A Challenge Set and Methods for Noun-Verb Ambiguity0
A Chinese Writing Correction System for Learning Chinese as a Foreign Language0
A Classification-Based Approach to Cognate Detection Combining Orthographic and Semantic Similarity Information0
A Closer Look on Unsupervised Cross-lingual Word Embeddings Mapping0
A comparative analysis of embedding models for patent similarity0
A Comparative Study of Embedding Models in Predicting the Compositionality of Multiword Expressions0
A Comparative Study of Neural Network Models for Sentence Classification0
A Comparative Study of Transformers on Word Sense Disambiguation0
A comparative study of word embeddings and other features for lexical complexity detection in French0
A Comparative Study of Word Embeddings for Reading Comprehension0
A Comparison of Architectures and Pretraining Methods for Contextualized Multilingual Word Embeddings0
A Comparison of Context-sensitive Models for Lexical Substitution0
A Comparison of Domain-based Word Polarity Estimation using different Word Embeddings0
A comparison of self-supervised speech representations as input features for unsupervised acoustic word embeddings0
A Comparison of Word2Vec, HMM2Vec, and PCA2Vec for Malware Classification0
A Comparison of Word Embeddings for English and Cross-Lingual Chinese Word Sense Disambiguation0
A Comprehensive Survey on Word Representation Models: From Classical to State-Of-The-Art Word Representation Language Models0
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