Research on Model Design about Learning Result Prediction and Intervention Based on Dynamic Data Mining
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Abstract
Predicting the academic performance of online learners and promptly intervening and guiding them is an effective way to improve the effectiveness of online learning. How to predict the academic performance and behavior of online learners, implement academic early warning based on prediction results, and provide evidence for teaching decision-making is one of the problems that network education needs to solve, and also an important research issue in educational big data research. This study uses the decision tree method in data mining technology to predict the learning behavior and performance of online learners, and constructs adaptive learning outcome prediction and intervention models. The application scenarios of the model are analyzed from the perspective of curriculum developers, teachers and students.
Publication details
- DOI
- 10.2991/isemss-19.2019.4
- OpenAlex
- W2979594762
- Document type
- conference-paper
- Language
- EN
- Source
- Proceedings of the 2019 3rd International Seminar on Education, Management and Social Sciences (ISEMSS 2019)
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