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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 751–800 of 4002 papers

TitleStatusHype
CogALex-V Shared Task: CGSRC - Classifying Semantic Relations using Convolutional Neural Networks—0
CogALex-V Shared Task: GHHH - Detecting Semantic Relations via Word Embeddings—0
CogALex-V Shared Task: LOPE—0
Artificial intelligence prediction of stock prices using social media—0
CogniFNN: A Fuzzy Neural Network Framework for Cognitive Word Embedding Evaluation—0
Artificial mental phenomena: Psychophysics as a framework to detect perception biases in AI models—0
CogniVal in Action: An Interface for Customizable Cognitive Word Embedding Evaluation—0
CogNLP-Sheffield at CMCL 2021 Shared Task: Blending Cognitively Inspired Features with Transformer-based Language Models for Predicting Eye Tracking Patterns—0
Coherence models in schizophrenia—0
COIN – an Inexpensive and Strong Baseline for Predicting Out of Vocabulary Word Embeddings—0
Co-learning of Word Representations and Morpheme Representations—0
A semi-supervised model for Persian rumor verification based on content information—0
An Unsupervised Approach for Mapping between Vector Spaces—0
Constructing Vec-tionaries to Extract Message Features from Texts: A Case Study of Moral Appeals—0
Combination of Domain Knowledge and Deep Learning for Sentiment Analysis of Short and Informal Messages on Social Media—0
Combining Acoustics, Content and Interaction Features to Find Hot Spots in Meetings—0
Content Selection through Paraphrase Detection: Capturing different Semantic Realisations of the Same Idea—0
Combining Character and Word Embeddings for the Detection of Offensive Language in Arabic—0
Combining Contrastive Learning and Knowledge Graph Embeddings to develop medical word embeddings for the Italian language—0
Combining Discourse Markers and Cross-lingual Embeddings for Synonym--Antonym Classification—0
Addressing Low-Resource Scenarios with Character-aware Embeddings—0
Combining Long Short Term Memory and Convolutional Neural Network for Cross-Sentence n-ary Relation Extraction—0
Combining neural and knowledge-based approaches to Named Entity Recognition in Polish—0
Combining Pretrained High-Resource Embeddings and Subword Representations for Low-Resource Languages—0
Combining Pre-trained Word Embeddings and Linguistic Features for Sequential Metaphor Identification—0
Combining Qualitative and Computational Approaches for Literary Analysis of Finnish Novels—0
A Morpho-Syntactically Informed LSTM-CRF Model for Named Entity Recognition—0
Combining rule-based and embedding-based approaches to normalize textual entities with an ontology—0
BLISS in Non-Isometric Embedding Spaces—0
Blinov: Distributed Representations of Words for Aspect-Based Sentiment Analysis at SemEval 2014—0
A Simple Fully Connected Network for Composing Word Embeddings from Characters—0
Combining time-series and textual data for taxi demand prediction in event areas: a deep learning approach—0
Combining word embeddings and convolutional neural networks to detect duplicated questions—0
A Simple Language Model based on PMI Matrix Approximations—0
Combining Word Embeddings and N-grams for Unsupervised Document Summarization—0
Combining Word Embeddings with Bilingual Orthography Embeddings for Bilingual Dictionary Induction—0
Coming to its senses: Lessons learned from Approximating Retrofitted BERT representations for Word Sense information—0
Coming to Your Senses: on Controls and Evaluation Sets in Polysemy Research—0
Ask the GRU: Multi-Task Learning for Deep Text Recommendations—0
Community Evaluation and Exchange of Word Vectors at wordvectors.org—0
Measuring Societal Biases from Text Corpora with Smoothed First-Order Co-occurrence—0
ASOBEK at SemEval-2016 Task 1: Sentence Representation with Character N-gram Embeddings for Semantic Textual Similarity—0
Blind signal decomposition of various word embeddings based on join and individual variance explained—0
BLCU\_NLP at SemEval-2018 Task 12: An Ensemble Model for Argument Reasoning Based on Hierarchical Attention—0
Comparing Approaches for Automatic Question Identification—0
Comparing CNN and LSTM character-level embeddings in BiLSTM-CRF models for chemical and disease named entity recognition—0
Comparing Contextual and Static Word Embeddings with Small Data—0
Comparing Feature-Engineering and Feature-Learning Approaches for Multilingual Translationese Classification—0
Comparing in context: Improving cosine similarity measures with a metric tensor—0
Antonymy-Synonymy Discrimination through the Repelling Parasiamese Neural Network—0
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