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SemEval-2016 Task 4: Sentiment Analysis in Twitter
Preslav Nakov
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Alan Ritter
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Sara Rosenthal
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Fabrizio Sebastiani
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Veselin Stoyanov
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Paper Details:
Month: June
Year: 2016
Location: San Diego, California
Venue:
*SEMEVAL |
Citations
URL
A Hybrid Deep Learning Architecture for Sentiment Analysis
Md Shad Akhtar
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Ayush Kumar
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Asif Ekbal
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Pushpak Bhattacharyya
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On the Impact of Seed Words on Sentiment Polarity Lexicon Induction
Dame Jovanoski
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Veno Pachovski
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Preslav Nakov
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Encoding Sentiment Information into Word Vectors for Sentiment Analysis
Zhe Ye
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Fang Li
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Timothy Baldwin
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A Retrospective Analysis of the Fake News Challenge Stance-Detection Task
Andreas Hanselowski
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Avinesh PVS
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Benjamin Schiller
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Felix Caspelherr
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Debanjan Chaudhuri
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Christian M. Meyer
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Iryna Gurevych
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Emotion Representation Mapping for Automatic Lexicon Construction (Mostly) Performs on Human Level
Sven Buechel
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Udo Hahn
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Using millions of emoji occurrences to learn any-domain representations for detecting sentiment, emotion and sarcasm
Bjarke Felbo
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Alan Mislove
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Anders Søgaard
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Iyad Rahwan
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Sune Lehmann
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Improving Multi-label Emotion Classification via Sentiment Classification with Dual Attention Transfer Network
Jianfei Yu
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Luís Marujo
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Jing Jiang
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Pradeep Karuturi
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William Brendel
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Attentive Gated Lexicon Reader with Contrastive Contextual Co-Attention for Sentiment Classification
Yi Tay
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Anh Tuan Luu
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Siu Cheung Hui
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Jian Su
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Uncertainty-aware generative models for inferring document class prevalence
Katherine Keith
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Brendan O’Connor
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Modeling Empathy and Distress in Reaction to News Stories
Sven Buechel
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Anneke Buffone
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Barry Slaff
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Lyle Ungar
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João Sedoc
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A Multi-View Sentiment Corpus
Debora Nozza
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Elisabetta Fersini
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Enza Messina
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TDParse: Multi-target-specific sentiment recognition on Twitter
Bo Wang
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Maria Liakata
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Arkaitz Zubiaga
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Rob Procter
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SMARTies: Sentiment Models for Arabic Target entities
Noura Farra
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Kathy McKeown
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Exploring Convolutional Neural Networks for Sentiment Analysis of Spanish tweets
Isabel Segura-Bedmar
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Antonio Quirós
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Paloma Martínez
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Structural Attention Neural Networks for improved sentiment analysis
Filippos Kokkinos
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Alexandros Potamianos
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NCYU at IJCNLP-2017 Task 2: Dimensional Sentiment Analysis for Chinese Phrases using Vector Representations
Jui-Feng Yeh
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Jian-Cheng Tsai
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Bo-Wei Wu
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Tai-You Kuang
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Sequence Classification with Human Attention
Maria Barrett
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Joachim Bingel
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Nora Hollenstein
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Marek Rei
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Anders Søgaard
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Sentiment Lexicons for Arabic Social Media
Saif Mohammad
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Mohammad Salameh
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Svetlana Kiritchenko
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A Dataset for Detecting Stance in Tweets
Saif Mohammad
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Svetlana Kiritchenko
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Parinaz Sobhani
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Xiaodan Zhu
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Colin Cherry
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EN-ES-CS: An English-Spanish Code-Switching Twitter Corpus for Multilingual Sentiment Analysis
David Vilares
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Miguel A. Alonso
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Carlos Gómez-Rodríguez
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Sharing Copies of Synthetic Clinical Corpora without Physical Distribution — A Case Study to Get Around IPRs and Privacy Constraints Featuring the German JSYNCC Corpus
Christina Lohr
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Sven Buechel
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Udo Hahn
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An Integrated Representation of Linguistic and Social Functions of Code-Switching
Silvana Hartmann
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Monojit Choudhury
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Kalika Bali
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Sentiment after Translation: A Case-Study on Arabic Social Media Posts
Mohammad Salameh
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Saif Mohammad
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Svetlana Kiritchenko
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Building Chinese Affective Resources in Valence-Arousal Dimensions
Liang-Chih Yu
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Lung-Hao Lee
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Shuai Hao
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Jin Wang
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Yunchao He
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Jun Hu
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K. Robert Lai
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Xuejie Zhang
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Ultradense Word Embeddings by Orthogonal Transformation
Sascha Rothe
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Sebastian Ebert
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Hinrich Schütze
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Capturing Reliable Fine-Grained Sentiment Associations by Crowdsourcing and Best–Worst Scaling
Svetlana Kiritchenko
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Saif M. Mohammad
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DAG-Structured Long Short-Term Memory for Semantic Compositionality
Xiaodan Zhu
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Parinaz Sobhani
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Hongyu Guo
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Zero-Shot Sequence Labeling: Transferring Knowledge from Sentences to Tokens
Marek Rei
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Anders Søgaard
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Multi-Task Learning of Pairwise Sequence Classification Tasks over Disparate Label Spaces
Isabelle Augenstein
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Sebastian Ruder
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Anders Søgaard
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Word Emotion Induction for Multiple Languages as a Deep Multi-Task Learning Problem
Sven Buechel
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Udo Hahn
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Affect-LM: A Neural Language Model for Customizable Affective Text Generation
Sayan Ghosh
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Mathieu Chollet
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Eugene Laksana
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Louis-Philippe Morency
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Stefan Scherer
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Two Methods for Domain Adaptation of Bilingual Tasks: Delightfully Simple and Broadly Applicable
Viktor Hangya
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Fabienne Braune
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Alexander Fraser
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Hinrich Schütze
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Bootstrap Domain-Specific Sentiment Classifiers from Unlabeled Corpora
Andrius Mudinas
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Dell Zhang
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Mark Levene
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ECNU: Multi-level Sentiment Analysis on Twitter Using Traditional Linguistic Features and Word Embedding Features
Zhihua Zhang
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Guoshun Wu
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Man Lan
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SemEval-2016 Task 4: Sentiment Analysis in Twitter
Preslav Nakov
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Alan Ritter
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Sara Rosenthal
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Fabrizio Sebastiani
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Veselin Stoyanov
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SemEval-2016 Task 5: Aspect Based Sentiment Analysis
Maria Pontiki
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Dimitris Galanis
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Haris Papageorgiou
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Ion Androutsopoulos
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Suresh Manandhar
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Mohammad AL-Smadi
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Mahmoud Al-Ayyoub
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Yanyan Zhao
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Bing Qin
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Orphée De Clercq
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Véronique Hoste
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Marianna Apidianaki
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Xavier Tannier
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Natalia Loukachevitch
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Evgeniy Kotelnikov
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Nuria Bel
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Salud María Jiménez-Zafra
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Gülşen Eryiğit
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SemEval-2016 Task 6: Detecting Stance in Tweets
Saif Mohammad
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Svetlana Kiritchenko
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Parinaz Sobhani
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Xiaodan Zhu
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Colin Cherry
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SemEval-2016 Task 7: Determining Sentiment Intensity of English and Arabic Phrases
Svetlana Kiritchenko
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Saif Mohammad
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Mohammad Salameh
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CUFE at SemEval-2016 Task 4: A Gated Recurrent Model for Sentiment Classification
Mahmoud Nabil
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Amir Atyia
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Mohamed Aly
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QCRI at SemEval-2016 Task 4: Probabilistic Methods for Binary and Ordinal Quantification
Giovanni Da San Martino
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Wei Gao
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Fabrizio Sebastiani
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SteM at SemEval-2016 Task 4: Applying Active Learning to Improve Sentiment Classification
Stefan Räbiger
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Mishal Kazmi
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Yücel Saygın
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Peter Schüller
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Myra Spiliopoulou
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I2RNTU at SemEval-2016 Task 4: Classifier Fusion for Polarity Classification in Twitter
Zhengchen Zhang
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Chen Zhang
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Fuxiang Wu
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Dong-Yan Huang
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Weisi Lin
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Minghui Dong
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LyS at SemEval-2016 Task 4: Exploiting Neural Activation Values for Twitter Sentiment Classification and Quantification
David Vilares
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Yerai Doval
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Miguel A. Alonso
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Carlos Gómez-Rodríguez
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ISTI-CNR at SemEval-2016 Task 4: Quantification on an Ordinal Scale
Andrea Esuli
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aueb.twitter.sentiment at SemEval-2016 Task 4: A Weighted Ensemble of SVMs for Twitter Sentiment Analysis
Stavros Giorgis
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Apostolos Rousas
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John Pavlopoulos
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Prodromos Malakasiotis
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Ion Androutsopoulos
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thecerealkiller at SemEval-2016 Task 4: Deep Learning based System for Classifying Sentiment of Tweets on Two Point Scale
Vikrant Yadav
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NTNUSentEval at SemEval-2016 Task 4: Combining General Classifiers for Fast Twitter Sentiment Analysis
Brage Ekroll Jahren
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Valerij Fredriksen
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Björn Gambäck
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Lars Bungum
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UDLAP at SemEval-2016 Task 4: Sentiment Quantification Using a Graph Based Representation
Esteban Castillo
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Ofelia Cervantes
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Darnes Vilariño
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David Báez
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Aicyber at SemEval-2016 Task 4: i-vector based sentence representation
Steven Du
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Xi Zhang
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PUT at SemEval-2016 Task 4: The ABC of Twitter Sentiment Analysis
Mateusz Lango
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Dariusz Brzezinski
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Jerzy Stefanowski
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mib at SemEval-2016 Task 4a: Exploiting lexicon based features for Sentiment Analysis in Twitter
Vittoria Cozza
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Marinella Petrocchi
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Finki at SemEval-2016 Task 4: Deep Learning Architecture for Twitter Sentiment Analysis
Dario Stojanovski
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Gjorgji Strezoski
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Gjorgji Madjarov
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Ivica Dimitrovski
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Tweester at SemEval-2016 Task 4: Sentiment Analysis in Twitter Using Semantic-Affective Model Adaptation
Elisavet Palogiannidi
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Athanasia Kolovou
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Fenia Christopoulou
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Filippos Kokkinos
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Elias Iosif
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Nikolaos Malandrakis
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Haris Papageorgiou
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Shrikanth Narayanan
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Alexandros Potamianos
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UofL at SemEval-2016 Task 4: Multi Domain word2vec for Twitter Sentiment Classification
Omar Abdelwahab
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Adel Elmaghraby
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INSIGHT-1 at SemEval-2016 Task 4: Convolutional Neural Networks for Sentiment Classification and Quantification
Sebastian Ruder
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Parsa Ghaffari
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John G. Breslin
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UNIMELB at SemEval-2016 Tasks 4A and 4B: An Ensemble of Neural Networks and a Word2Vec Based Model for Sentiment Classification
Steven Xu
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HuiZhi Liang
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Timothy Baldwin
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SentiSys at SemEval-2016 Task 4: Feature-Based System for Sentiment Analysis in Twitter
Hussam Hamdan
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DSIC-ELIRF at SemEval-2016 Task 4: Message Polarity Classification in Twitter using a Support Vector Machine Approach
Víctor Martinez Morant
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LLuís-F. Hurtado
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Ferran Pla
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SENSEI-LIF at SemEval-2016 Task 4: Polarity embedding fusion for robust sentiment analysis
Mickael Rouvier
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Benoit Favre
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UniPI at SemEval-2016 Task 4: Convolutional Neural Networks for Sentiment Classification
Giuseppe Attardi
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Daniele Sartiano
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IIP at SemEval-2016 Task 4: Prioritizing Classes in Ensemble Classification for Sentiment Analysis of Tweets
Jasper Friedrichs
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PotTS at SemEval-2016 Task 4: Sentiment Analysis of Twitter Using Character-level Convolutional Neural Networks.
Uladzimir Sidarenka
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INESC-ID at SemEval-2016 Task 4-A: Reducing the Problem of Out-of-Embedding Words
Silvio Amir
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Ramon Astudillo
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Wang Ling
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Mário J. Silva
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Isabel Trancoso
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SentimentalITsts at SemEval-2016 Task 4: building a Twitter sentiment analyzer in your backyard
Cosmin Florean
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Oana Bejenaru
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Eduard Apostol
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Octavian Ciobanu
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Adrian Iftene
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Diana Trandabăţ
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Minions at SemEval-2016 Task 4: or how to build a sentiment analyzer using off-the-shelf resources?
Călin-Cristian Ciubotariu
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Marius-Valentin Hrişca
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Mihail Gliga
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Diana Darabană
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Diana Trandabăţ
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Adrian Iftene
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YZU-NLP Team at SemEval-2016 Task 4: Ordinal Sentiment Classification Using a Recurrent Convolutional Network
Yunchao He
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Liang-Chih Yu
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Chin-Sheng Yang
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K. Robert Lai
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Weiyi Liu
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ECNU at SemEval-2016 Task 4: An Empirical Investigation of Traditional NLP Features and Word Embedding Features for Sentence-level and Topic-level Sentiment Analysis in Twitter
Yunxiao Zhou
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Zhihua Zhang
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Man Lan
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NileTMRG at SemEval-2016 Task 7: Deriving Prior Polarities for Arabic Sentiment Terms
Samhaa R. El-Beltagy
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SwissCheese at SemEval-2016 Task 4: Sentiment Classification Using an Ensemble of Convolutional Neural Networks with Distant Supervision
Jan Deriu
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Maurice Gonzenbach
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Fatih Uzdilli
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Aurelien Lucchi
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Valeria De Luca
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Martin Jaggi
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Detecting Stance in Tweets And Analyzing its Interaction with Sentiment
Parinaz Sobhani
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Saif Mohammad
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Svetlana Kiritchenko
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BB_twtr at SemEval-2017 Task 4: Twitter Sentiment Analysis with CNNs and LSTMs
Mathieu Cliche
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NNEMBs at SemEval-2017 Task 4: Neural Twitter Sentiment Classification: a Simple Ensemble Method with Different Embeddings
Yichun Yin
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Yangqiu Song
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Ming Zhang
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SINAI at SemEval-2017 Task 4: User based classification
Salud María Jiménez-Zafra
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Arturo Montejo-Ráez
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Maite Martin
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L. Alfonso Ureña-López
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SentiME++ at SemEval-2017 Task 4: Stacking State-of-the-Art Classifiers to Enhance Sentiment Classification
Raphaël Troncy
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Enrico Palumbo
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Efstratios Sygkounas
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Giuseppe Rizzo
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TWINA at SemEval-2017 Task 4: Twitter Sentiment Analysis with Ensemble Gradient Boost Tree Classifier
Naveen Kumar Laskari
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Suresh Kumar Sanampudi
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OMAM at SemEval-2017 Task 4: English Sentiment Analysis with Conditional Random Fields
Chukwuyem Onyibe
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Nizar Habash
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Tweester at SemEval-2017 Task 4: Fusion of Semantic-Affective and pairwise classification models for sentiment analysis in Twitter
Athanasia Kolovou
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Filippos Kokkinos
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Aris Fergadis
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Pinelopi Papalampidi
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Elias Iosif
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Nikolaos Malandrakis
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Elisavet Palogiannidi
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Haris Papageorgiou
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Shrikanth Narayanan
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Alexandros Potamianos
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Senti17 at SemEval-2017 Task 4: Ten Convolutional Neural Network Voters for Tweet Polarity Classification
Hussam Hamdan
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YNUDLG at SemEval-2017 Task 4: A GRU-SVM Model for Sentiment Classification and Quantification in Twitter
Ming Wang
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Biao Chu
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Qingxun Liu
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Xiaobing Zhou
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funSentiment at SemEval-2017 Task 4: Topic-Based Message Sentiment Classification by Exploiting Word Embeddings, Text Features and Target Contexts
Quanzhi Li
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Armineh Nourbakhsh
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Xiaomo Liu
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Rui Fang
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Sameena Shah
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DataStories at SemEval-2017 Task 4: Deep LSTM with Attention for Message-level and Topic-based Sentiment Analysis
Christos Baziotis
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Nikos Pelekis
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Christos Doulkeridis
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INGEOTEC at SemEval 2017 Task 4: A B4MSA Ensemble based on Genetic Programming for Twitter Sentiment Analysis
Sabino Miranda-Jiménez
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Mario Graff
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Eric Sadit Tellez
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Daniela Moctezuma
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YNU-HPCC at SemEval 2017 Task 4: Using A Multi-Channel CNN-LSTM Model for Sentiment Classification
Haowei Zhang
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Jin Wang
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Jixian Zhang
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Xuejie Zhang
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TSA-INF at SemEval-2017 Task 4: An Ensemble of Deep Learning Architectures Including Lexicon Features for Twitter Sentiment Analysis
Amit Ajit Deshmane
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Jasper Friedrichs
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funSentiment at SemEval-2017 Task 5: Fine-Grained Sentiment Analysis on Financial Microblogs Using Word Vectors Built from StockTwits and Twitter
Quanzhi Li
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Sameena Shah
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Armineh Nourbakhsh
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Rui Fang
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Xiaomo Liu
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TakeLab at SemEval-2017 Task 5: Linear aggregation of word embeddings for fine-grained sentiment analysis of financial news
Leon Rotim
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Martin Tutek
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Jan Šnajder
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SemEval-2018 Task 3: Irony Detection in English Tweets
Cynthia Van Hee
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Els Lefever
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Véronique Hoste
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AffecThor at SemEval-2018 Task 1: A cross-linguistic approach to sentiment intensity quantification in tweets
Mostafa Abdou
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Artur Kulmizev
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Joan Ginés i Ametllé
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NTUA-SLP at SemEval-2018 Task 1: Predicting Affective Content in Tweets with Deep Attentive RNNs and Transfer Learning
Christos Baziotis
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Athanasiou Nikolaos
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Alexandra Chronopoulou
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Athanasia Kolovou
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Georgios Paraskevopoulos
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Nikolaos Ellinas
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Shrikanth Narayanan
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Alexandros Potamianos
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Zewen at SemEval-2018 Task 1: An Ensemble Model for Affect Prediction in Tweets
Zewen Chi
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Heyan Huang
|
Jiangui Chen
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Hao Wu
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Ran Wei
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RIDDL at SemEval-2018 Task 1: Rage Intensity Detection with Deep Learning
Venkatesh Elango
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Karan Uppal
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ARB-SEN at SemEval-2018 Task1: A New Set of Features for Enhancing the Sentiment Intensity Prediction in Arabic Tweets
El Moatez Billah Nagoudi
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EPUTION at SemEval-2018 Task 2: Emoji Prediction with User Adaption
Liyuan Zhou
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Qiongkai Xu
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Hanna Suominen
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Tom Gedeon
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PunFields at SemEval-2018 Task 3: Detecting Irony by Tools of Humor Analysis
Elena Mikhalkova
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Yuri Karyakin
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Alexander Voronov
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Dmitry Grigoriev
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Artem Leoznov
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WLV at SemEval-2018 Task 3: Dissecting Tweets in Search of Irony
Omid Rohanian
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Shiva Taslimipoor
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Richard Evans
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Ruslan Mitkov
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Modelling Valence and Arousal in Facebook posts
Daniel Preoţiuc-Pietro
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H. Andrew Schwartz
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Gregory Park
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Johannes Eichstaedt
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Margaret Kern
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Lyle Ungar
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Elisabeth Shulman
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Sentiment Analysis in Twitter: A SemEval Perspective
Preslav Nakov
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A Practical Guide to Sentiment Annotation: Challenges and Solutions
Saif Mohammad
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Findings of the 2016 WMT Shared Task on Cross-lingual Pronoun Prediction
Liane Guillou
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Christian Hardmeier
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Preslav Nakov
|
Sara Stymne
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Jörg Tiedemann
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Yannick Versley
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Mauro Cettolo
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Bonnie Webber
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Andrei Popescu-Belis
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Feelings from the Past—Adapting Affective Lexicons for Historical Emotion Analysis
Sven Buechel
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Johannes Hellrich
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Udo Hahn
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Generating Sentiment Lexicons for German Twitter
Uladzimir Sidarenka
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Manfred Stede
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Microblog Emotion Classification by Computing Similarity in Text, Time, and Space
Anja Summa
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Bernd Resch
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Michael Strube
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Towards Building a SentiWordNet for Tamil
Abishek Kannan
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Gaurav Mohanty
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Radhika Mamidi
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Potential and Limitations of Cross-Domain Sentiment Classification
Jan Milan Deriu
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Martin Weilenmann
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Dirk Von Gruenigen
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Mark Cieliebak
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A Twitter Corpus and Benchmark Resources for German Sentiment Analysis
Mark Cieliebak
|
Jan Milan Deriu
|
Dominic Egger
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Fatih Uzdilli
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A Characterization Study of Arabic Twitter Data with a Benchmarking for State-of-the-Art Opinion Mining Models
Ramy Baly
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Gilbert Badaro
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Georges El-Khoury
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Rawan Moukalled
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Rita Aoun
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Hazem Hajj
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Wassim El-Hajj
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Nizar Habash
|
Khaled Shaban
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Not All Segments are Created Equal: Syntactically Motivated Sentiment Analysis in Lexical Space
Muhammad Abdul-Mageed
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Comparison of Short-Text Sentiment Analysis Methods for Croatian
Leon Rotim
|
Jan Šnajder
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Using Convolutional Neural Networks to Classify Hate-Speech
Björn Gambäck
|
Utpal Kumar Sikdar
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Findings of the 2017 DiscoMT Shared Task on Cross-lingual Pronoun Prediction
Sharid Loáiciga
|
Sara Stymne
|
Preslav Nakov
|
Christian Hardmeier
|
Jörg Tiedemann
|
Mauro Cettolo
|
Yannick Versley
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Annotation, Modelling and Analysis of Fine-Grained Emotions on a Stance and Sentiment Detection Corpus
Hendrik Schuff
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Jeremy Barnes
|
Julian Mohme
|
Sebastian Padó
|
Roman Klinger
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Explaining Recurrent Neural Network Predictions in Sentiment Analysis
Leila Arras
|
Grégoire Montavon
|
Klaus-Robert Müller
|
Wojciech Samek
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NSEmo at EmoInt-2017: An Ensemble to Predict Emotion Intensity in Tweets
Sreekanth Madisetty
|
Maunendra Sankar Desarkar
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Ternary Twitter Sentiment Classification with Distant Supervision and Sentiment-Specific Word Embeddings
Mats Byrkjeland
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Frederik Gørvell de Lichtenberg
|
Björn Gambäck
|
https://github.com/aritter/twitter
http://alt.qcri.org/semeval2016/task4/
http://alt.qcri.org/semeval2016/task4/
Field Of Study
Linguistic Trends
Embeddings
Task
Named Entity Recognition
Sentiment Analysis
Social Science
Approach
Deep Learning
Structured Prediction
Language
English
Dataset
Twitter
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