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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 34763500 of 4002 papers

TitleStatusHype
ValNorm Quantifies Semantics to Reveal Consistent Valence Biases Across Languages and Over CenturiesCode0
Embedding Strategies for Specialized Domains: Application to Clinical Entity RecognitionCode0
One of these words is not like the other: a reproduction of outlier identification using non-contextual word representationsCode0
Embedding Transfer for Low-Resource Medical Named Entity Recognition: A Case Study on Patient MobilityCode0
A Method for Studying Semantic Construal in Grammatical Constructions with Interpretable Contextual Embedding SpacesCode0
CLIP-Decoder : ZeroShot Multilabel Classification using Multimodal CLIP Aligned RepresentationCode0
Learning Composition Models for Phrase EmbeddingsCode0
Task-oriented Word Embedding for Text ClassificationCode0
A Comparative Analysis of Static Word Embeddings for HungarianCode0
Beyond Film Subtitles: Is YouTube the Best Approximation of Spoken Vocabulary?Code0
emoji2vec: Learning Emoji Representations from their DescriptionCode0
Learning Contextual Tag Embeddings for Cross-Modal Alignment of Audio and TagsCode0
One-to-X analogical reasoning on word embeddings: a case for diachronic armed conflict prediction from news textsCode0
EmoSense at SemEval-2019 Task 3: Bidirectional LSTM Network for Contextual Emotion Detection in Textual ConversationsCode0
Semantic Properties of cosine based bias scores for word embeddingsCode0
Clinical Flair: A Pre-Trained Language Model for Spanish Clinical Natural Language ProcessingCode0
One Word, Two Sides: Traces of Stance in Contextualized Word RepresentationsCode0
On Extending NLP Techniques from the Categorical to the Latent Space: KL Divergence, Zipf's Law, and Similarity SearchCode0
Clinical Concept Embeddings Learned from Massive Sources of Multimodal Medical DataCode0
1-Diffractor: Efficient and Utility-Preserving Text Obfuscation Leveraging Word-Level Metric Differential PrivacyCode0
Learning Crosslingual Word Embeddings without Bilingual CorporaCode0
Learning Diachronic Analogies to Analyze Concept ChangeCode0
Audio Caption in a Car Setting with a Sentence-Level LossCode0
Better Word Embeddings by Disentangling Contextual n-Gram InformationCode0
Word-Class Embeddings for Multiclass Text ClassificationCode0
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