Optimizing Student Collaborative Learning through Artificial Intelligence Integration: An Innovative Approach

Authors

  • Jusra Tampubolon Universitas Prima Indonesia
  • Darwin Li Universitas Prima Indonesia
  • Yusuf Ronny Edward Universitas Prima Indonesia

DOI:

https://doi.org/10.61132/iceat.v3i1.197

Keywords:

Artificial Intelligence, Collaborative Learning, Collaborative Skills, Student Interaction, Teamwork Efficiency

Abstract

This study examines the role of Artificial Intelligence (AI) in enhancing student collaborative learning, with a particular emphasis on AI-driven feedback mechanisms and patterns of student interaction in developing effective collaborative skills. Unlike prior studies, this research highlights the mediating effect of AI-driven feedback on teamwork efficiency and overall learning outcomes in collaborative environments. An explanatory quantitative approach was applied using Partial Least Squares Structural Equation Modeling (PLS-SEM) to ensure robust data analysis. Data were collected from 112 university students who were actively engaged in AI-assisted collaborative learning activities, using a structured online survey instrument. The data were subsequently analyzed using SmartPLS software. The results reveal that AI significantly enhances student interaction (β = 0.534, p < 0.000) and improves problem-solving feedback (β = 0.620, p < 0.000), both of which contribute to significantly strengthening collaborative skills (β = 0.716, p < 0.000). However, the findings also indicate that AI alone does not directly improve collaboration without the support of structured pedagogical design and guidance. Therefore, universities should strategically integrate AI-driven feedback into Learning Management Systems (LMS) and strengthen digital literacy initiatives to optimize the effectiveness and sustainability of AI in collaborative learning contexts.

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Published

2026-05-14

How to Cite

Jusra Tampubolon, Darwin Li, & Yusuf Ronny Edward. (2026). Optimizing Student Collaborative Learning through Artificial Intelligence Integration: An Innovative Approach. Proceeding of the International Conference on Economics, Accounting, and Taxation, 3(1), 10–24. https://doi.org/10.61132/iceat.v3i1.197