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Using sentiment analysis to evaluate qualitative students� responses

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dc.contributor.author Dake D.K.
dc.contributor.author Gyimah E.
dc.date.accessioned 2022-10-31T15:05:02Z
dc.date.available 2022-10-31T15:05:02Z
dc.date.issued 2022
dc.identifier.issn 13602357
dc.identifier.other 10.1007/s10639-022-11349-1
dc.identifier.uri http://41.74.91.244:8080/handle/123456789/195
dc.description Dake, D.K., University of Education Winneba, Winneba, Ghana; Gyimah, E., University of Education Winneba, Winneba, Ghana en_US
dc.description.abstract Text analytics in education has evolved to form a critical component of the future SMART campus architecture. Sentiment analysis and qualitative feedback from students is now a crucial application domain of text analytics relevant to institutions. The implementation of sentiment analysis helps understand learners� appreciation of lessons, which they prefer to express in long texts with little or no restriction. Such expressions depict the learner�s emotions and mood during class engagements. This research deployed four classifiers, including Na�ve Bayes (NB), Support Vector Machine (SVM), J48 Decision Tree (DT), and Random Forest (RF), on a qualitative feedback text after a semester-based course session at the University of Education, Winneba. After enough training and testing using the k-fold cross-validation technique, the SVM classification algorithm performed with a superior accuracy of 63.79%. � 2022, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature. en_US
dc.publisher Springer en_US
dc.subject Educational Data Mining en_US
dc.subject Machine learning en_US
dc.subject NRC emotion lexicon en_US
dc.subject Opinion mining en_US
dc.subject Sentiment analysis en_US
dc.subject Smart Education en_US
dc.subject Text analytics en_US
dc.subject Unstructured text en_US
dc.title Using sentiment analysis to evaluate qualitative students� responses en_US
dc.type Article en_US


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