Background of the Study
Adaptive learning refers to the use of technology to adjust the learning path based on individual student performance and needs, providing personalized content, feedback, and pace of learning. AI-based adaptive learning models leverage machine learning algorithms to assess students' strengths, weaknesses, and learning styles, thereby offering customized instructional experiences. In university lecture halls, where diverse student backgrounds and varying learning paces are common, adaptive learning models can significantly improve educational outcomes.
The University of Abuja, with its large student population, faces challenges related to the diverse academic abilities of students and the need for individualized attention. Traditional one-size-fits-all teaching approaches may not effectively cater to these diverse needs, leading to suboptimal academic performance and engagement. AI-based adaptive learning models can provide personalized learning experiences by analyzing real-time student data to dynamically adjust the content and teaching strategies. However, the adoption of such models in Nigerian universities, particularly in the University of Abuja, remains a relatively unexplored area. This study aims to design and implement an AI-based adaptive learning system in university lecture halls to address the challenges of personalized learning and improve student outcomes.
Statement of the Problem
The University of Abuja faces challenges in delivering effective education to a diverse student body, with students demonstrating varying levels of academic readiness and learning preferences. Traditional teaching methods, which typically do not account for individual differences in learning styles and abilities, may contribute to subpar learning experiences for many students. Despite the potential of AI-based adaptive learning to address these challenges, its implementation and effectiveness in Nigerian universities, particularly in the University of Abuja, remain underexplored. This study seeks to design and implement an AI-based adaptive learning model to personalize education and improve student performance in university lecture halls.
Objectives of the Study
Research Questions
Research Hypotheses
Significance of the Study
The findings from this study will help universities in Nigeria, particularly the University of Abuja, optimize their teaching and learning practices by integrating AI-based adaptive learning technologies. The research will contribute to a deeper understanding of how AI can be leveraged to provide personalized learning experiences, improve student outcomes, and enhance educational quality in large university settings.
Scope and Limitations of the Study
The study will focus on the design, implementation, and evaluation of an AI-based adaptive learning model for university lecture halls at the University of Abuja. It will be limited to specific courses and student groups within the university and may not be generalizable to other educational institutions in Nigeria. The study will also face limitations in terms of the available technological infrastructure and faculty expertise.
Definitions of Terms
AI-Based Adaptive Learning: A system that uses AI to personalize learning experiences by adjusting the content, pace, and instructional methods based on individual student data and performance.
Learning Outcomes: The knowledge, skills, and competencies acquired by students as a result of the learning process.
Adaptive Learning Models: Educational systems that dynamically modify the learning path based on real-time data, ensuring that content is tailored to meet the needs of individual students.
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Chapter One: Introduction
1.1 Background of the Study
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