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International Advanced Research Journal in Science, Engineering and Technology
International Advanced Research Journal in Science, Engineering and Technology A Monthly Peer-Reviewed Multidisciplinary Journal
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← Back to VOLUME 11, ISSUE 10, OCTOBER 2024

Student Academic Monitoring System

Prof. Vanashri.N.Sawant, Aniruddh Salunkhe, Maitreyee Patil, Vedant Yadav,Nishit Vetal

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Abstract: The increasing complexity of educational data demands advanced analytical methods beyond traditional evaluation metrics. This study investigates the application of Educational Data Mining (EDM) to analyze and predict students' academic performance effectively. It combines clustering methods, particularly an enhanced K-means algorithm, and deep learning techniques like Convolutional Neural Networks (CNN) to provide a comprehensive evaluation framework. The proposed approach focuses on improving the accuracy of performance prediction by determining optimal clustering numbers and using labeled data for deep learning. Results demonstrate significant improvements in identifying at-risk students and enhancing educational decision-making.

Keywords: Academic records, Attendance tracking, HTML (Hyper Text Markup Language) ,PHP CSS,JQuery, Bootstrap,Node.js,Course registration. component, formatting, style, styling,CNN,EDM

How to Cite:

[1] Prof. Vanashri.N.Sawant, Aniruddh Salunkhe, Maitreyee Patil, Vedant Yadav,Nishit Vetal, “Student Academic Monitoring System,” International Advanced Research Journal in Science, Engineering and Technology (IARJSET), DOI: 10.17148/IARJSET.2024.111019

Creative Commons License This work is licensed under a Creative Commons Attribution 4.0 International License.