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Jan Gunis; L'ubomir Snajder; L'ubomir Antoni; Peter Elias; Ondrej Kridlo; Stanislav Krajci – IEEE Transactions on Education, 2025
Contribution: We present a framework for teachers to investigate the relationships between attributes of students' solutions in the process of problem solving or computational thinking. We provide visualization and evaluation techniques to find hidden patterns in the students' solutions which allow teachers to predict the specific behavior of…
Descriptors: Artificial Intelligence, Educational Games, Game Based Learning, Problem Solving
Leah M. Ridgway; Tom Cox – IEEE Transactions on Education, 2024
Contribution: This study uses a qualitative research method to analyze interviews where participants simplified an electric circuit while explaining their thought process. Background: Rearranging circuit diagrams is a fundamental skill in electrical and electronic engineering, yet students can struggle with unfamiliar configurations. Current…
Descriptors: Electronic Equipment, Visual Aids, Engineering Education, Undergraduate Students
Carlotta Berry; Leanne Holder; Nicole Pfiester; Tracy Weyand – IEEE Transactions on Education, 2024
Contribution: Visual maps that illustrate how mathematics, physics, and electrical engineering classes are connected to each other during the first two years of the electrical engineering curriculum were developed. Key terminology and differences in presentation between fields are discussed. Background: Experience has shown that engineering…
Descriptors: Concept Mapping, Mathematics, Physics, Engineering Education
Adam, Gina C.; Harlow, Danielle B.; Lord, Susan M.; Kautz, Christian H. – IEEE Transactions on Education, 2017
The concept of electric current is fundamental in the study of electrical engineering (EE). Students are often exposed to this concept in their daily lives and early in middle school education. Lower-division university courses are usually limited to the study of passive electronic devices and simple electric circuits. Semiconductor physics is an…
Descriptors: Engineering Education, Electronics, Scientific Concepts, Misconceptions
Johnson, Amy M.; Butcher, Kirsten R.; Ozogul, Gamze; Reisslein, Martin – IEEE Transactions on Education, 2014
Novice learners are typically unfamiliar with abstract engineering symbols. They are also often unaccustomed to instructional materials consisting of a combination of text, diagrams, and equations. This raises the question of whether instruction on elementary electrical circuit analysis for novice learners should employ contextualized…
Descriptors: Electronics, Equipment, Engineering Education, Visual Aids
Ozogul, G.; Johnson, A. M.; Moreno, R.; Reisslein, M. – IEEE Transactions on Education, 2012
Technological literacy education involves the teaching of basic engineering principles and problem solving, including elementary electrical circuit analysis, to non-engineering students. Learning materials on circuit analysis typically rely on equations and schematic diagrams, which are often unfamiliar to non-engineering students. The goal of…
Descriptors: Multimedia Materials, Comparative Analysis, Equations (Mathematics), Technological Literacy

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