2022
DOI: 10.3390/electronics11091316
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Building and Using Multiple Stacks of Models for the Classification of Learners and Custom Recommending of Quizzes

Abstract: Recommending quizzes in e-Learning systems always represents a challenging task, as the quality of recommendations may have a high impact on the student’s progress. We propose a data analysis workflow based on building multiple stacks of models that use information from former students’ taken quizzes. The current implementation uses the RandomForest algorithm for building the models on a real-world dataset that has been obtained in a controlled environment. As preprocessing techniques, we have used normalizati… Show more

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