N. S. Koti Mani Kumar Tirumanadham

Work place: Department of Computer Science and Engineering, Bharath Institute of Higher Education and Research, Chennai, Tamil Nadu, India

E-mail: manikumar1248@gmail.com

Website: https://orcid.org/0000-0003-3900-1900

Research Interests:

Biography

N. S. Koti Mani Kumar Tirumanadham is a research scholar in the Computer Science and Engineering department at Bharath Institute of Higher Education and Research in Selaiyur. He is currently working towards a Ph.D. in Computer Science and Engineering. His main areas of interest include Machine Learning, Deep Learning, and Computer Networks. He finished his M. Tech degree in Computer Science and Engineering from JNTUK in 2017, and he completed his B. Tech degree in IT from JNTUK in 2013. He is enthusiastic about learning and using technology to make new discoveries in these fields.

Author Articles
Enhancing Student Performance Prediction in E-Learning Environments: Advanced Ensemble Techniques and Robust Feature Selection

By N. S. Koti Mani Kumar Tirumanadham Thaiyalnayaki S.

DOI: https://doi.org/10.5815/ijmecs.2025.02.03, Pub. Date: 8 Apr. 2025

By means of a thorough investigation of ensemble methodologies and feature selection approaches, this work explores enhancing predictive modelling in e-learning contexts. The setting is in the growing significance of data-driven decision-making in education and tailored learning programs. The main concern is how to fairly forecast student performance in environments of digital learning. This work intends to solve gaps by investigating new ensemble models and robust feature selection techniques based on already published research. Using cutting-edge analytical techniques including hybrid BR2-2T models and the Chi-square test, the study produces remarkable accuracy surpassing known limits. The results underline the need of feature selection and ensemble methods in improving forecast accuracy and dependability. Finally, this study marks a major step in the field of e-learning predictive modelling since it helps to improve educational results and enable data-driven interventions.

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