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Overview of the Arabic Sentiment Analysis 2021 Competition at KAUST
by
Zhang, Xiangliang
, Alharbi, Basma
, Khayyat, Zuhair
, Inji Ibrahim Jaber
, Alshehri, Manal
, Kalkatawi, Manal
, Alamro, Hind
in
Competition
/ Data mining
/ Datasets
/ Machine learning
/ Sentiment analysis
/ Teams
/ Training
2021
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Overview of the Arabic Sentiment Analysis 2021 Competition at KAUST
by
Zhang, Xiangliang
, Alharbi, Basma
, Khayyat, Zuhair
, Inji Ibrahim Jaber
, Alshehri, Manal
, Kalkatawi, Manal
, Alamro, Hind
in
Competition
/ Data mining
/ Datasets
/ Machine learning
/ Sentiment analysis
/ Teams
/ Training
2021
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Do you wish to request the book?
Overview of the Arabic Sentiment Analysis 2021 Competition at KAUST
by
Zhang, Xiangliang
, Alharbi, Basma
, Khayyat, Zuhair
, Inji Ibrahim Jaber
, Alshehri, Manal
, Kalkatawi, Manal
, Alamro, Hind
in
Competition
/ Data mining
/ Datasets
/ Machine learning
/ Sentiment analysis
/ Teams
/ Training
2021
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Overview of the Arabic Sentiment Analysis 2021 Competition at KAUST
Paper
Overview of the Arabic Sentiment Analysis 2021 Competition at KAUST
2021
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Overview
This paper provides an overview of the Arabic Sentiment Analysis Challenge organized by King Abdullah University of Science and Technology (KAUST). The task in this challenge is to develop machine learning models to classify a given tweet into one of the three categories Positive, Negative, or Neutral. From our recently released ASAD dataset, we provide the competitors with 55K tweets for training, and 20K tweets for validation, based on which the performance of participating teams are ranked on a leaderboard, https://www.kaggle.com/c/arabic-sentiment-analysis-2021-kaust. The competition received in total 1247 submissions from 74 teams (99 team members). The final winners are determined by another private set of 20K tweets that have the same distribution as the training and validation set. In this paper, we present the main findings in the competition and summarize the methods and tools used by the top ranked teams. The full dataset of 100K labeled tweets is also released for public usage, at https://www.kaggle.com/c/arabic-sentiment-analysis-2021-kaust/data.
Publisher
Cornell University Library, arXiv.org
Subject
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