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Proceedings ArticleDOI

Educational Data Mining: Analysis Based On an Intelligent Tutoring System for Teaching Algebra

TLDR
In this paper , the application of EDM techniques, based on data generated by a web-based Intelligent Tutor System (ITS), developed for the teaching of algebra, which helps students to develop fundamental knowledge of mathematics, in addition to carrying out a comparative study between the level of difficulty of the proposed algebraic questions.
Abstract
This complete article of the research category presentes proposes the application of Educational Data Mining (EDM) techniques, based on data generated by a web-based Intelligent Tutor System (ITS), developed for the teaching of algebra, which helps students to develop fundamental knowledge of mathematics, in addition to carrying out a comparative study between the level of difficulty of the proposed algebraic questions. For this, we use the knowledge discovery methodology to perform the following steps from the data: cleaning, integration, selection, transformation, mining, evaluation and presentation of information. The practical results reveal that the proposed architecture can classify the academic performance of students in each evaluation period with an accuracy of around 80%. It was also possible to identify factors related to the resolution of questions, such as the rate of correct answers and the mathematical steps to solve an exercise, classifying the level of difficulty of the questions proposed by the system, acting on the student’s deficiencies, and the system. The results obtained from the data analysis can serve as a basis for decision-making, helping in the teaching process for teachers, tutors and managers to monitor academic performance, enabling the correction of problems and identifying the individual and collective difficulties present in each class. In summary, these results also provide a general roadmap on the performance of using EDM techniques in a given context.

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References
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Book ChapterDOI

Educational Data Mining and Learning Analytics

TL;DR: How these methods emerged in the early days of research in this area is discussed, which methods have seen particular interest in the EDM and learning analytics communities, and how this has changed as the field matures and has moved to making significant contributions to both educational research and practice.
Journal ArticleDOI

Review: Educational data mining: A survey and a data mining-based analysis of recent works

TL;DR: This review pursues a twofold goal, to preserve and enhance the chronicles of recent educational data mining (EDM) advances development, and provides an analysis of the EDM strengths, weakness, opportunities, and threats, whose factors represent, in a sense, future work to be fulfilled.
Journal ArticleDOI

A Systematic Review on Educational Data Mining

TL;DR: This paper provides over three decades long systematic literature review on clustering algorithm and its applicability and usability in the context of EDM.
Journal ArticleDOI

Educational data mining and learning analytics for 21st century higher education: A review and synthesis

TL;DR: Applying EDM and LA in higher education can be useful in developing a student-focused strategy and providing the required tools that institutions will be able to use for the purposes of continuous improvement.
Journal ArticleDOI

A novel selective naïve Bayes algorithm

TL;DR: Empirical results demonstrate that the selective naive Bayes shows superior classification accuracy, yet at the same time maintains the simplicity and efficiency.
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