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Adaptive Learning Systems and Their Impact on STEM Achievement

Suha Khalil Assayed (The British University in Dubai, UAE), Ola Al-Khalili (Birzeit University, Palestine), and Sana Khalil Álsayed (Philadelphia University, Jordan)
Projected Release Date: July, 2026 | Copyright: © 2027 | Pages: 325

Publication Status: Coming Soon
ISBN13: 9798337393308
ISBN13 Softcover: 9798337393315
EISBN13: 9798337393322
DOI: 10.4018/979-8-3373-9330-8

Description:

Adaptive learning systems are transforming education by personalizing learning pathways to meet the unique needs of each student. As classrooms become increasingly diverse and technology-driven, educators are exploring how artificial intelligence can support more individualized and inclusive learning experiences. In STEM and language education, these AI-powered tools provide tailored instruction, real-time feedback, and data-driven insights, supporting skills from mathematics and science to reading, writing, speaking, and listening across multiple languages. They are especially valuable for learners with diverse needs, including students requiring additional support or specialized learning approaches, such as those with impairments, as adaptive platforms can adjust content, pacing, and feedback to better support individual learning profiles and improve accessibility.

Adaptive Learning Systems and Their Impact on STEM Achievement explores how adaptive learning connects with broader AI applications in education, demonstrating how technology can make learning more effective, inclusive, and meaningful for all students. Through practical examples and real-world case studies, the book highlights ways educators and school leaders can integrate adaptive technologies into everyday teaching and learning while using AI thoughtfully and responsibly. Covering topics such as AI-based teaching models, equitable STEM classrooms, and collaborative intelligence, this book is an excellent academic resource for graduate and doctoral students, educators, school leaders, university faculty, and more.

Coverage:

The many academic areas covered in this publication include, but are not limited to:

  • Adaptive Learning Systems
  • Artificial Intelligence (AI)
  • Collaborative Intelligence
  • Equitable STEM Classrooms
  • Inclusive Learning
  • Language Learning and Assessment
  • Multi-source Data Fusion
  • Smart Classrooms
  • Special Education
  • STEM Achievement
  • Teaching Models
  • Technological Upgradation

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Dr. Suha Khalil Assayed holds a Ph.D. in Computer Science from The British University in Dubai, UAE, specializing in Artificial Intelligence and Deep Learning. With over two decades of experience in the higher education sector, she has developed deep expertise in machine learning, natural language processing (NLP), and neural network architectures, focusing on innovative AI applications that enhance educational outcomes. Dr. Assayed’s research bridges theory and practice, emphasizing the design and deployment of AI- driven tools, including generative AI models, for personalized student advising and support. Her scholarly contributions encompass pioneering work on AI integration in education, intelligent chatbots, and adaptive learning systems, with publications in leading journals and conferences. Passionate about advancing smart education, she explores how emerging technologies can create more inclusive and effective learning environments.

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