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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 801850 of 4002 papers

TitleStatusHype
AsPOS: Assamese Part of Speech Tagger using Deep Learning Approach0
Comparing Recurrent and Convolutional Architectures for English-Hindi Neural Machine Translation0
Comparing the Intrinsic Performance of Clinical Concept Embeddings by Their Field of Medicine0
Comparing the Performance of Feature Representations for the Categorization of the Easy-to-Read Variety vs Standard Language0
Comparing Word Representations for Implicit Discourse Relation Classification0
Comparison between Voting Classifier and Deep Learning methods for Arabic Dialect Identification0
Comparison of Paragram and GloVe Results for Similarity Benchmarks0
Comparison of Representations of Named Entities for Document Classification0
Comparison of Short-Text Sentiment Analysis Methods for Croatian0
BLCU\_NLP at SemEval-2018 Task 12: An Ensemble Model for Argument Reasoning Based on Hierarchical Attention0
Compiling a Highly Accurate Bilingual Lexicon by Combining Different Approaches0
Complementary Strategies for Low Resourced Morphological Modeling0
Complex networks based word embeddings0
Complex Ontology Matching with Large Language Model Embeddings0
A Multiplicative Model for Learning Distributed Text-Based Attribute Representations0
Component-Enhanced Chinese Character Embeddings0
Composing Knowledge Graph Embeddings via Word Embeddings0
Composing Noun Phrase Vector Representations0
Composing Word Vectors for Japanese Compound Words Using Bilingual Word Embeddings0
Compositional and Lexical Semantics in RoBERTa, BERT and DistilBERT: A Case Study on CoQA0
Antonymy-Synonymy Discrimination through the Repelling Parasiamese Neural Network0
Compositional Fusion of Signals in Data Embedding0
Compositional Morpheme Embeddings with Affixes as Functions and Stems as Arguments0
Compound Embedding Features for Semi-supervised Learning0
Compound or Term Features? Analyzing Salience in Predicting the Difficulty of German Noun Compounds across Domains0
Comprehensive Analysis of Aspect Term Extraction Methods using Various Text Embeddings0
Multilingual Embeddings Jointly Induced from Contexts and Concepts: Simple, Strong and Scalable0
Compressing Word Embeddings0
Compressing Word Embeddings Using Syllables0
A Structured Distributional Model of Sentence Meaning and Processing0
A House United: Bridging the Script and Lexical Barrier between Hindi and Urdu0
COVID-19 and Arabic Twitter: How can Arab World Governments and Public Health Organizations Learn from Social Media?0
Computational Detection of Intertextual Parallels in Biblical Hebrew: A Benchmark Study Using Transformer-Based Language Models0
Computationally Constructed Concepts: A Machine Learning Approach to Metaphor Interpretation Using Usage-Based Construction Grammatical Cues0
A Study of Cross-Lingual Ability and Language-specific Information in Multilingual BERT0
A Hmong Corpus with Elaborate Expression Annotations0
An RNN-based Binary Classifier for the Story Cloze Test0
Conceptor Debiasing of Word Representations Evaluated on WEAT0
Concept Space Alignment in Multilingual LLMs0
Conceptual Cognitive Maps Formation with Neural Successor Networks and Word Embeddings0
Conditional Generative Adversarial Networks for Emoji Synthesis with Word Embedding Manipulation0
Corporate IT-support Help-Desk Process Hybrid-Automation Solution with Machine Learning Approach0
Bit Cipher -- A Simple yet Powerful Word Representation System that Integrates Efficiently with Language Models0
Conditional Word Embedding and Hypothesis Testing via Bayes-by-Backprop0
Connecting Supervised and Unsupervised Sentence Embeddings0
Considerations for the Interpretation of Bias Measures of Word Embeddings0
Consistency and Variation in Kernel Neural Ranking Model0
Consistent Structural Relation Learning for Zero-Shot Segmentation0
Constrained Sequence-to-sequence Semitic Root Extraction for Enriching Word Embeddings0
BIT at SemEval-2016 Task 1: Sentence Similarity Based on Alignments and Vector with the Weight of Information Content0
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