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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 76100 of 4002 papers

TitleStatusHype
Compass-aligned Distributional Embeddings for Studying Semantic Differences across CorporaCode1
ALL-IN-1: Short Text Classification with One Model for All LanguagesCode1
ALIGN-MLM: Word Embedding Alignment is Crucial for Multilingual Pre-trainingCode1
Adversarial Training for Commonsense InferenceCode1
Contextualized Embeddings based Transformer Encoder for Sentence Similarity Modeling in Answer Selection TaskCode1
Contextual Word Representations: A Contextual IntroductionCode1
Cooperative Self-training of Machine Reading ComprehensionCode1
Cross-Lingual Word Embedding Refinement by _1 Norm OptimisationCode1
CTRAN: CNN-Transformer-based Network for Natural Language UnderstandingCode1
Data Mining in Clinical Trial Text: Transformers for Classification and Question Answering TasksCode1
Debiasing Pre-trained Contextualised EmbeddingsCode1
Zero-Shot Semantic SegmentationCode1
A Neural Few-Shot Text Classification Reality CheckCode1
DeepSentiPers: Novel Deep Learning Models Trained Over Proposed Augmented Persian Sentiment CorpusCode1
DeFINE: DEep Factorized INput Token Embeddings for Neural Sequence ModelingCode1
Adversarial Training Methods for Semi-Supervised Text ClassificationCode1
“Did you really mean what you said?” : Sarcasm Detection in Hindi-English Code-Mixed Data using Bilingual Word EmbeddingsCode1
DiLM: Distilling Dataset into Language Model for Text-level Dataset DistillationCode1
discopy: A Neural System for Shallow Discourse ParsingCode1
Dynamic Contextualized Word EmbeddingsCode1
Effective Seed-Guided Topic Discovery by Integrating Multiple Types of ContextsCode1
AnomalyLLM: Few-shot Anomaly Edge Detection for Dynamic Graphs using Large Language ModelsCode1
Efficient Sentence Embedding via Semantic Subspace AnalysisCode1
ADEPT: A DEbiasing PrompT FrameworkCode1
A Source-Criticism Debiasing Method for GloVe EmbeddingsCode1
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