2016
DOI: 10.1155/2016/8315281
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Classification of Arabic Twitter Users: A Study Based on User Behaviour and Interests

Abstract: Social networks are among the most popular interactive media today due to their simplicity and their ability to break down the barriers of community rules and their speed and because of the increasing pressures of work environments that make it more difficult for people to visit or call friends. There are many social networking products available and they are widely used for social interaction. As the amount of threading data is growing, producing analysis from this large volume of communications is becoming i… Show more

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Cited by 10 publications
(5 citation statements)
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“…People of different professions like common people, academicians, technologists, politicians, sports, and celebrities use Twitter to share their thoughts without restriction which is an excellent source to evaluate public perceptions. 80 Along with the 5C model, we also looked at other behavioral models (HBM) to map Twitter topics. We did this to observe if Twitter topics can cover all other theoretical frameworks in the COVID-19 vaccine hesitancy model.…”
Section: Discussionmentioning
confidence: 99%
“…People of different professions like common people, academicians, technologists, politicians, sports, and celebrities use Twitter to share their thoughts without restriction which is an excellent source to evaluate public perceptions. 80 Along with the 5C model, we also looked at other behavioral models (HBM) to map Twitter topics. We did this to observe if Twitter topics can cover all other theoretical frameworks in the COVID-19 vaccine hesitancy model.…”
Section: Discussionmentioning
confidence: 99%
“…This might be one of the causes of inaccuracy when making inference or classification based on tweets. Researchers on the study of Arabic Twitter users classification also concerned about the issue when performing classification using Twitter data [14]. There are several methods that could be implemented in reducing that by selecting the appropriate method.…”
Section: Related Workmentioning
confidence: 99%
“…In 2016, a study was carried out where the researchers used the SVM and NB classifiers for investigating the MSA [41], [42], [43], [44]. Alabdullatif et al [41] applied the SVM and NB classifiers for carrying out a supervised SA for the Arabic languages. These algorithms were used for classifying topics like religion, sports, politics, economy and technology, collected from Twitter.…”
Section: ) Support Vector Machines (Svm) and Naïve Bayes (Nb)mentioning
confidence: 99%