解决复杂工程问题与活动的微处理器与微控制器实验课程设计

IF 2 3区 工程技术 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Fahim Hafiz, Md Jahidul Hoq Emon, Md Abid Hossain, Md. Saddam Hossain Mukta, Salekul Islam, Swakkhar Shatabda
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引用次数: 0

摘要

本文提出了一种新的微处理器与微控制器实验课程。建议的课程将结构化的实验室实验与开放式的项目阶段相结合,解决复杂的工程问题和活动。微处理器和微控制器在现代技术中无处不在,推动了不同领域的应用。为了让未来的工程师为工业4.0做好准备,有效的教育方法至关重要。拟议的实验室使学生能够使用先进的微处理器和微控制器进行动手实验,同时利用他们通过团队合作获得的知识来解决利用这些设备和传感器的自定义复杂工程问题,这些问题通常在行业中使用。此外,该课程促进多学科学习,并使学生具备在现实世界中应用的解决问题的能力。随着最近的技术进步,传统的微处理器和微控制器课程往往无法捕捉现实世界应用的复杂性。本课程通过结合工业界和学术界专家的见解来解决这一关键差距。它培养学生必要的技能和知识,在这个快速发展的技术环境中茁壮成长,为他们毕业后的成功做好准备。课程整合了基于项目的学习,学生自己定义复杂的工程问题。这种方法积极地吸引学生,培养他们更深层次的理解,提高他们的学习能力。统计分析表明,拟议的课程显著提高了学生的学习成果,特别是在制定和解决复杂工程问题以及从事复杂工程活动的能力方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of a Microprocessors and Microcontrollers Laboratory Course Addressing Complex Engineering Problems and Activities

This paper proposes a novel curriculum for the microprocessors and microcontrollers laboratory course. The proposed curriculum blends structured laboratory experiments with an open-ended project phase, addressing complex engineering problems and activities. Microprocessors and microcontrollers are ubiquitous in modern technology, driving applications across diverse fields. To prepare future engineers for Industry 4.0, effective educational approaches are crucial. The proposed lab enables students to perform hands-on experiments using advanced microprocessors and microcontrollers while leveraging their acquired knowledge by working in teams to tackle self-defined complex engineering problems that utilize these devices and sensors, often used in the industry. Furthermore, this curriculum fosters multidisciplinary learning and equips students with problem-solving skills that can be applied in real-world scenarios. With recent technological advancements, traditional microprocessors and microcontrollers curricula often fail to capture the complexity of real-world applications. This curriculum addresses this critical gap by incorporating insights from experts in both industry and academia. It trains students with the necessary skills and knowledge to thrive in this rapidly evolving technological landscape, preparing them for success upon graduation. The curriculum integrates project-based learning, where students define complex engineering problems for themselves. This approach actively engages students, fostering a deeper understanding and enhancing their learning capabilities. Statistical analysis shows that the proposed curriculum significantly improves student learning outcomes, particularly in their ability to formulate and solve complex engineering problems, as well as engage in complex engineering activities.

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来源期刊
Computer Applications in Engineering Education
Computer Applications in Engineering Education 工程技术-工程:综合
CiteScore
7.20
自引率
10.30%
发文量
100
审稿时长
6-12 weeks
期刊介绍: Computer Applications in Engineering Education provides a forum for publishing peer-reviewed timely information on the innovative uses of computers, Internet, and software tools in engineering education. Besides new courses and software tools, the CAE journal covers areas that support the integration of technology-based modules in the engineering curriculum and promotes discussion of the assessment and dissemination issues associated with these new implementation methods.
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