Student Perceptions on the Effectiveness of Microcontroller and Microprocessor-Based Projects in Achieving SDG-Oriented Learning Outcomes: A TPACK-Guided Quantitative Analysis
DOI:
https://doi.org/10.5281/zenodo.21637891Keywords:
Microcontroller And Microprocessor-Based Projects, Pedagogical Integration, Sustainable Development Goals, Technological Pedagogical Content Knowledge, Undergraduate Engineering EducationAbstract
Microcontroller and microprocessor-based projects are increasingly adopted in engineering and technology education for further innovation, problem-solving, and sustainability outcomes. Despite increasing interest in this area, there is limited evidence regarding the contribution of microcontroller and microprocessor-based projects to Sustainable Development Goals (SDGs) when implemented within structured pedagogical frameworks. This study examined student perceptions of projects aligned with SDG 4 (Quality Education), SDG 9 (Industry, Innovation, and Infrastructure), and SDG 17 (Partnerships for the Goals), utilizing the Technological Pedagogical Content Knowledge (TPACK) model as a guiding framework. The study adopted a descriptive quantitative research design involving 43 third-year and fourth-year undergraduate computer engineering students who completed the microcontroller and microprocessor-based projects with sustainability. The data were collected through a 50-item validated TPACK-SDG questionnaire and analyzed using descriptive and inferential statistical methods. The results found a strong positive response with an overall TPACK integration rating of 87.8% (Strongly Agree). The highest scores were obtained in Pedagogical Content Knowledge (PCK, 4.40) and Technological Pedagogical Knowledge (TPK, 4.40) which indicates the effectiveness of project-based, interactive and socially relevant instruction. In contrast, Technological Content Knowledge (TCK, 3.93) received the lowest rating, indicating that support to apply microcontroller and microprocessor technology to specific sustainability outcomes such as renewable energy, health, and environmental systems needs to be increased. These results suggest that the application of microcontroller and microprocessor projects based on SDGs and TPACK can be a model that can be replicated in technical courses to promote the integration of sustainability, innovation, and partnership in higher education curricula.
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