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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 30513075 of 4002 papers

TitleStatusHype
NSEmo at EmoInt-2017: An Ensemble to Predict Emotion Intensity in Tweets0
NUIG at EmoInt-2017: BiLSTM and SVR Ensemble to Detect Emotion Intensity0
C-3MA: Tartu-Riga-Zurich Translation Systems for WMT17Code0
LCT-MALTA's Submission to RepEval 2017 Shared Task0
YZU-NLP at EmoInt-2017: Determining Emotion Intensity Using a Bi-directional LSTM-CNN Model0
Recognizing Textual Entailment in Twitter Using Word Embeddings0
Cross-Lingual Pronoun Prediction with Deep Recurrent Neural Networks v2.00
Adapting Neural Machine Translation with Parallel Synthetic Data0
Investigating neural architectures for short answer scoring0
Textmining at EmoInt-2017: A Deep Learning Approach to Sentiment Intensity Scoring of English Tweets0
Lexical Chains meet Word Embeddings in Document-level Statistical Machine Translation0
Bilexical Embeddings for Quality Estimation0
Towards the Understanding of Gaming Audiences by Modeling Twitch Emotes0
Lexicalized vs. Delexicalized Parsing in Low-Resource Scenarios0
UWat-Emote at EmoInt-2017: Emotion Intensity Detection using Affect Clues, Sentiment Polarity and Word Embeddings0
Variable Mini-Batch Sizing and Pre-Trained Embeddings0
Neural Networks and Spelling Features for Native Language Identification0
Detecting Sarcasm Using Different Forms Of Incongruity0
Predicting Pronouns with a Convolutional Network and an N-gram Model0
LIPN-UAM at EmoInt-2017:Combination of Lexicon-based features and Sentence-level Vector Representations for Emotion Intensity Determination0
Improving neural tagging with lexical information0
Discovering Stylistic Variations in Distributional Vector Space Models via Lexical Paraphrases0
Automatic Community Creation for Abstractive Spoken Conversations Summarization0
Evaluation of word embeddings against cognitive processes: primed reaction times in lexical decision and naming tasks0
Prepositional Phrase Attachment over Word Embedding Products0
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