IMPLEMENTING INQUIRY-BASED LEARNING STRATEGIES IN MATHEMATICS TO FOSTER MEANINGFUL LEARNING
Mathematics education is expected to develop students' conceptual understanding, reasoning, and problem-solving abilities rather than merely procedural fluency. However, mathematics instruction in many educational contexts continues to emphasize memorization of formulas and the reproduction of teacher-demonstrated procedures, limiting students' opportunities to construct meaningful mathematical understanding. Inquiry-Based Learning (IBL) offers a promising pedagogical alternative by positioning students as active participants in questioning, investigating, conjecturing, reasoning, and reflecting on mathematical ideas. This paper aims to conceptually examine the role of inquiry-based learning in promoting meaningful learning in mathematics education. Drawing on constructivist perspectives and theories of meaningful learning, the paper analyzes the pedagogical processes through which inquiry activities facilitate the construction of mathematical knowledge. The discussion highlights that meaningful mathematical learning emerges not simply from student exploration but from the integration of questioning, mathematical investigation, representation, reasoning, communication, and reflection supported by appropriate teacher scaffolding. The paper further examines the pedagogical phases of mathematical inquiry, the relationship between inquiry and conceptual understanding, and major challenges associated with its classroom implementation. The analysis suggests that the effectiveness of inquiry-based mathematics learning depends on a balance between student autonomy and structured instructional guidance. Rather than functioning as completely unguided discovery, effective inquiry requires carefully designed mathematical tasks, productive questioning, collaborative discourse, and opportunities for reflection and formalization. This paper contributes a conceptual perspective that positions inquiry as a pedagogical pathway connecting active mathematical exploration with meaningful understanding, reasoning, and problem solving. The findings have implications for mathematics teachers, curriculum designers, and researchers seeking to promote deeper and more student-centered mathematics learning.
Authors
- Jefri Layuk Pake1*, Selvi Rajuati Tandiseru2, Suri Toding Lembang3
Publication Details
- Journal
- Zenodo (CERN European Organization for Nuclear Research)
- Published
- 2026-09-12
- DOI
- https://doi.org/10.5281/zenodo.22722835
- Primary Topic
- Mathematics Education and Teaching Techniques
- Type
- article
- Field-Weighted Citation Impact
- 0.00