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Q1 2025

Predictive Modeling for University Major Selection: An AI-Driven Solution Using Arab Graduate Data

Yosra Abdullah Salem Elewa · Mohammed Fadhl Abdullah
10.20428/jst.v30i11.3236 384 Views 0 Citations
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Abstract

Choosing an appropriate university major is crucial for students’ academic and career success. This study presents an AI-driven recommendation system using supervised machine learning, specifically the Random Forest algorithm, to support major selection based on academic performance (GPA, entrance exam scores) and labor market relevance (major-specific employment rates). The system was trained on 1000 student records from the "Arab University Graduate Data Set" and received 97% accuracy, with employment rate and GPAs appearing as the most effective predictions. Unlike previous studies focused on developed countries, this research emphasizes AI ability in the environment with limited resources as Yemeni universities. It provides a scalable solution to coordinate educational alternatives with labor market needs. Future work will integrate personal interests and socio-economic factors to increase privatization.

Cite this Article (APA)
Yosra, A. S. E., Mohammed, F. A. (2025). Predictive Modeling for University Major Selection: An AI-Driven Solution Using Arab Graduate Data. Journal of Science and Technology. https://doi.org/10.20428/jst.v30i11.3236
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Published in
ISSN 1607-2073
Quartile Q1
AMS Score 100
Field Natural Sciences
Publisher University of Science and Technolog
Country 🇾🇪 Yemen
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Authors
Publication Details
Year 2025
Language English/Arabic
Added 13 Aug 2026