Using E-Reputation for sentiment analysis : twitter as a case study

dc.contributor.authorSalhi, Dhai Eddine
dc.contributor.authorTari, Abelkamel
dc.contributor.authorKechadi, Mohand Tahar
dc.date.accessioned2021-12-06T09:16:44Z
dc.date.available2021-12-06T09:16:44Z
dc.date.issued2021
dc.description.abstractIn a competitive world, companies are looking to gain a positive reputation through these clients. Electronic reputation is part of this reputation mainly in social networks, where everyone is free to express their opinion. Sentiment analysis of the data collected in these networks is very necessary to identify and know the reputation of a companies. This paper focused on one type of data, Twits on Twitter, where the authors analyzed them for the company Djezzy (mobile operator in Algeria), to know their satisfaction. The study is divided into two parts: The first part was the pre-processing phase, where this research filtered the Twits (eliminate useless words, use the tokenization) to keep the necessary information for a better accuracy. The second part was the application of machine learning algorithms (SVM and logistic regression) for a supervised classification since the results are binary. The strong point of this study was the possibility to run the chosen algorithms on a cloud in order to save execution time; the solution also supports the three languages: Arabic, English, and Frenchen_US
dc.identifier.issn21561834
dc.identifier.uriDOI: 10.4018/IJCAC.2021040103
dc.identifier.urihttps://www.igi-global.com/article/using-e-reputation-for-sentiment-analysis/274337
dc.identifier.urihttps://dspace.univ-boumerdes.dz/handle/123456789/7456
dc.language.isoenen_US
dc.publisherIGI Globalen_US
dc.relation.ispartofseriesInternational Journal of Cloud Applications and Computing/ Vol.11, N°2 (2021);pp. 32-47
dc.subjectE-Reputationen_US
dc.subjectMachine Learningen_US
dc.subjectSentiment Analysisen_US
dc.subjectSVMen_US
dc.subjectTwitter Clusteringen_US
dc.titleUsing E-Reputation for sentiment analysis : twitter as a case studyen_US
dc.typeArticleen_US

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