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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 25512575 of 4002 papers

TitleStatusHype
Investigating Effective Parameters for Fine-tuning of Word Embeddings Using Only a Small Corpus0
Investigating Gender Bias in BERT0
Investigating Graph Structure Information for Entity Alignment with Dangling Cases0
Investigating Language Universal and Specific Properties in Word Embeddings0
Investigating neural architectures for short answer scoring0
Investigating Sub-Word Embedding Strategies for the Morphologically Rich and Free Phrase-Order Hungarian0
Investigating the Effectiveness of Representations Based on Pretrained Transformer-based Language Models in Active Learning for Labelling Text Datasets0
Investigating the Stability of Concrete Nouns in Word Embeddings0
IRISA at SMM4H 2018: Neural Network and Bagging for Tweet Classification0
Is Neural Topic Modelling Better than Clustering? An Empirical Study on Clustering with Contextual Embeddings for Topics0
Isomorphic Cross-lingual Embeddings for Low-Resource Languages0
Isomorphic Cross-lingual Embeddings for Low-Resource Languages0
Is Stance Detection Topic-Independent and Cross-topic Generalizable? - A Reproduction Study0
Is there Gender bias and stereotype in Portuguese Word Embeddings?0
Is ``Universal Syntax'' Universally Useful for Learning Distributed Word Representations?0
ISWARA at WNUT-2020 Task 2: Identification of Informative COVID-19 English Tweets using BERT and FastText Embeddings0
Is Wikipedia succeeding in reducing gender bias? Assessing changes in gender bias in Wikipedia using word embeddings0
It's All in the Name: Mitigating Gender Bias with Name-Based Counterfactual Data Substitution0
IxaMed at PharmacoNER Challenge 20190
Jabberwocky Parsing: Dependency Parsing with Lexical Noise0
Japanese Lexical Simplification for Non-Native Speakers0
Japanese Word Readability Assessment using Word Embeddings0
JCT at SemEval-2021 Task 1: Context-aware Representation for Lexical Complexity Prediction0
JeSemE: Interleaving Semantics and Emotions in a Web Service for the Exploration of Language Change Phenomena0
JeuxDeLiens: Word Embeddings and Path-Based Similarity for Entity Linking using the French JeuxDeMots Lexical Semantic Network0
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