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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 38513900 of 4002 papers

TitleStatusHype
Learning Word Representations from Scarce and Noisy Data with Embedding Subspaces0
Gaussian LDA for Topic Models with Word EmbeddingsCode0
Learning Bilingual Sentiment Word Embeddings for Cross-language Sentiment Classification0
Detecting Semantically Equivalent Questions in Online User Forums0
Enhancing the Inside-Outside Recursive Neural Network Reranker for Dependency Parsing0
Semantic Clustering and Convolutional Neural Network for Short Text Categorization0
Hallym: Named Entity Recognition on Twitter with Word Representation0
Lexical Comparison Between Wikipedia and Twitter Corpora by Using Word Embeddings0
An analysis of the user occupational class through Twitter content0
The DCU Discourse Parser for Connective, Argument Identification and Explicit Sense Classification0
A Multitask Objective to Inject Lexical Contrast into Distributional Semantics0
A Minimalist Approach to Shallow Discourse Parsing and Implicit Relation Recognition0
Aligning Opinions: Cross-Lingual Opinion Mining with Dependencies0
A Lexicalized Tree Kernel for Open Information Extraction0
Word Embeddings Pointing the Way for Late AntiquityCode0
SensEmbed: Learning Sense Embeddings for Word and Relational Similarity0
A Hierarchical Knowledge Representation for Expert Finding on Social Media0
Semantic Representations for Domain Adaptation: A Case Study on the Tree Kernel-based Method for Relation Extraction0
Symmetric Pattern Based Word Embeddings for Improved Word Similarity Prediction0
Machine Comprehension with Syntax, Frames, and Semantics0
Unifying Bayesian Inference and Vector Space Models for Improved Decipherment0
Leverage Financial News to Predict Stock Price Movements Using Word Embeddings and Deep Neural Networks0
Distilling Word Embeddings: An Encoding Approach0
Leveraging Word Embeddings for Spoken Document Summarization0
Learning language through picturesCode0
Unveiling the Dreams of Word Embeddings: Towards Language-Driven Image Generation0
From Paraphrase Database to Compositional Paraphrase Model and BackCode0
WordRank: Learning Word Embeddings via Robust RankingCode0
Modeling Order in Neural Word Embeddings at Scale0
DCU: Using Distributional Semantics and Domain Adaptation for the Semantic Textual Similarity SemEval-2015 Task 20
DeepNL: a Deep Learning NLP pipeline0
Learning Distributed Representations for Multilingual Text Sequences0
ECNU: Leveraging Word Embeddings to Boost Performance for Paraphrase in Twitter0
Dependency Link Embeddings: Continuous Representations of Syntactic Substructures0
UNITN: Training Deep Convolutional Neural Network for Twitter Sentiment Classification0
Dependency-Based Semantic Role Labeling using Convolutional Neural Networks0
ExB Themis: Extensive Feature Extraction from Word Alignments for Semantic Textual Similarity0
USAAR-WLV: Hypernym Generation with Deep Neural Nets0
Relation Extraction: Perspective from Convolutional Neural Networks0
WarwickDCS: From Phrase-Based to Target-Specific Sentiment Recognition0
MITRE: Seven Systems for Semantic Similarity in Tweets0
Distributional Representations of Words for Short Text Classification0
A Word-Embedding-based Sense Index for Regular Polysemy Representation0
AZMAT: Sentence Similarity Using Associative Matrices0
Reading Between the Lines: Overcoming Data Sparsity for Accurate Classification of Lexical Relationships0
Semantic Information Extraction for Improved Word Embeddings0
CroVeWA: Crosslingual Vector-Based Writing Assistance0
Associating Neural Word Embeddings With Deep Image Representations Using Fisher Vectors0
INESC-ID: Sentiment Analysis without Hand-Coded Features or Linguistic Resources using Embedding Subspaces0
Word Embeddings vs Word Types for Sequence Labeling: the Curious Case of CV Parsing0
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