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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 151175 of 4002 papers

TitleStatusHype
Compositional Demographic Word EmbeddingsCode1
"Did you really mean what you said?" : Sarcasm Detection in Hindi-English Code-Mixed Data using Bilingual Word EmbeddingsCode1
BERT for Monolingual and Cross-Lingual Reverse DictionaryCode1
Multi-Relational Embedding for Knowledge Graph Representation and AnalysisCode1
iNLTK: Natural Language Toolkit for Indic LanguagesCode1
Modality-Transferable Emotion Embeddings for Low-Resource Multimodal Emotion RecognitionCode1
Latin BERT: A Contextual Language Model for Classical PhilologyCode1
Vector Projection Network for Few-shot Slot Tagging in Natural Language UnderstandingCode1
Dual-path CNN with Max Gated block for Text-Based Person Re-identificationCode1
Multilingual Music Genre Embeddings for Effective Cross-Lingual Music Item AnnotationCode1
GeDi: Generative Discriminator Guided Sequence GenerationCode1
Brain2Word: Decoding Brain Activity for Language GenerationCode1
Going Beyond T-SNE: Exposing whatlies in Text EmbeddingsCode1
Comparative Evaluation of Pretrained Transfer Learning Models on Automatic Short Answer GradingCode1
GREEK-BERT: The Greeks visiting Sesame StreetCode1
Context-aware Feature Generation for Zero-shot Semantic SegmentationCode1
Discovering and Categorising Language Biases in RedditCode1
Towards Debiasing Sentence RepresentationsCode1
GLOW : Global Weighted Self-Attention Network for Web SearchCode1
Visual Question Generation from Radiology ImagesCode1
OSCaR: Orthogonal Subspace Correction and Rectification of Biases in Word EmbeddingsCode1
Rethinking Positional Encoding in Language Pre-trainingCode1
Multilingual Jointly Trained Acoustic and Written Word EmbeddingsCode1
Embed2Detect: Temporally Clustered Embedded Words for Event Detection in Social MediaCode1
Detecting Emergent Intersectional Biases: Contextualized Word Embeddings Contain a Distribution of Human-like BiasesCode1
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