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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 39514000 of 4002 papers

TitleStatusHype
Monolingual Embeddings for Low Resourced Neural Machine TranslationCode0
MoralStrength: Exploiting a Moral Lexicon and Embedding Similarity for Moral Foundations PredictionCode0
Spoken Word2Vec: Learning Skipgram Embeddings from SpeechCode0
Word Embeddings via Causal Inference: Gender Bias Reducing and Semantic Information PreservingCode0
Identification, Interpretability, and Bayesian Word EmbeddingsCode0
Identification, Interpretability, and Bayesian Word EmbeddingsCode0
Identification of Adjective-Noun Neologisms using Pretrained Language ModelsCode0
Adapting Word Embeddings to New Languages with Morphological and Phonological Subword RepresentationsCode0
Analysis of Railway Accidents' Narratives Using Deep LearningCode0
A Review of Different Word Embeddings for Sentiment Classification using Deep LearningCode0
Topic Modeling on User Stories using Word Mover's DistanceCode0
Recurrent neural networks with specialized word embeddings for health-domain named-entity recognitionCode0
Topic Modeling over Short Texts by Incorporating Word EmbeddingsCode0
Acquiring Common Sense Spatial Knowledge through Implicit Spatial TemplatesCode0
[RE] Double-Hard Debias: Tailoring Word Embeddings for Gender Bias MitigationCode0
Morphology-Aware Meta-Embeddings for TamilCode0
Acoustic word embeddings for zero-resource languages using self-supervised contrastive learning and multilingual adaptationCode0
Morphosyntactic Tagging with a Meta-BiLSTM Model over Context Sensitive Token EncodingsCode0
IITK at SemEval-2024 Task 1: Contrastive Learning and Autoencoders for Semantic Textual Relatedness in Multilingual TextsCode0
Automatic Extraction of Nested Entities in Clinical Referrals in SpanishCode0
Von Mises-Fisher Loss for Training Sequence to Sequence Models with Continuous OutputsCode0
MoRTy: Unsupervised Learning of Task-specialized Word Embeddings by AutoencodingCode0
Unsupervised Abstractive Meeting Summarization with Multi-Sentence Compression and Budgeted Submodular MaximizationCode0
StarSpace: Embed All The Things!Code0
Automatic Detection of Sexist Statements Commonly Used at the WorkplaceCode0
IMAGINATOR: Pre-Trained Image+Text Joint Embeddings using Word-Level Grounding of ImagesCode0
Are the Best Multilingual Document Embeddings simply Based on Sentence Embeddings?Code0
Word Embeddings via Tensor FactorizationCode0
Imparting Interpretability to Word Embeddings while Preserving Semantic StructureCode0
Unsupervised Alignment of Embeddings with Wasserstein ProcrustesCode0
Reflection-based Word Attribute TransferCode0
Unsupervised Approach to Evaluate Sentence-Level Fluency: Do We Really Need Reference?Code0
An Automatic Question Usability Evaluation ToolkitCode0
Improve Chinese Word Embeddings by Exploiting Internal StructureCode0
Building a Kannada POS Tagger Using Machine Learning and Neural Network ModelsCode0
Words with Consistent Diachronic Usage Patterns are Learned Earlier: A Computational Analysis Using Temporally Aligned Word EmbeddingsCode0
Multi-granular Legal Topic Classification on Greek LegislationCode0
Improved Biomedical Word Embeddings in the Transformer EraCode0
Multi hash embeddings in spaCyCode0
Multi-label Categorization of Accounts of Sexism using a Neural FrameworkCode0
Automatic Argumentative-Zoning Using Word2vecCode0
Improved Relation Extraction with Feature-Rich Compositional Embedding ModelsCode0
Multi-Label Image Recognition with Graph Convolutional NetworksCode0
BRUMS at SemEval-2020 Task 3: Contextualised Embeddings for Predicting the (Graded) Effect of Context in Word SimilarityCode0
Still a Pain in the Neck: Evaluating Text Representations on Lexical CompositionCode0
Reinforced Counterfactual Data Augmentation for Dual Sentiment ClassificationCode0
Improved Word Representation Learning with SememesCode0
Improved Word Sense Disambiguation Using Pre-Trained Contextualized Word RepresentationsCode0
Automated WordNet Construction Using Word EmbeddingsCode0
Improving Acoustic Word Embeddings through Correspondence Training of Self-supervised Speech RepresentationsCode0
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