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Ian Descamps; Sophia Jeon; N. G. Holmes; Rachel E. Scherr; David Hammer – Physical Review Physics Education Research, 2024
In introductory physics laboratory instruction, students often expect to confirm or demonstrate textbook physics concepts. This expectation is largely undesirable: labs that emphasize confirmation of textbook physics concepts are generally unsuccessful at teaching those concepts and even in contexts that do not emphasize confirmation, such…
Descriptors: Physics, Science Instruction, Teaching Methods, Personal Autonomy
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Verostek, Mike; Griston, Molly; Botello, Jesús; Zwickl, Benjamin – Physical Review Physics Education Research, 2022
Understanding how physicists solve problems can guide the development of methods that help students learn and improve at solving complex problems. Leveraging the framework of cognitive task analysis, we conducted semistructured interviews with theoretical physicists (N=11) to gain insight into the cognitive processes and skills that they use in…
Descriptors: Physics, Science Instruction, Teaching Methods, Troubleshooting
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Safadi, Rafi'; Ababsy, Ranin – Physics Education, 2020
Research indicates that troubleshooting activities that require students to reflect on pre-prepared erroneous examples, i.e. erroneous solutions to problems that correspond to common naïve ideas, impact their learning positively. These include asking students to diagnose erroneous examples; in other words, detect the conceptual errors and then…
Descriptors: Troubleshooting, Error Correction, Demonstrations (Educational), Physics
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Van De Bogart, Kevin L.; Dounas-Frazer, Dimitri R.; Lewandowski, H. J.; Stetzer, MacKenzie R. – Physical Review Physics Education Research, 2017
Developing students' ability to troubleshoot is an important learning outcome for many undergraduate physics lab courses, especially electronics courses. In other work, metacognition has been identified as an important feature of troubleshooting. However, that work has focused primarily on "individual" students' metacognitive processes…
Descriptors: Metacognition, Troubleshooting, Physics, Science Instruction
Van De Bogart, Kevin L. – ProQuest LLC, 2017
Instruction in analog electronics is an integral component of many physics and engineering programs, and is typically covered in courses beyond the first year. While extensive research has been conducted on student understanding of introductory electric circuits, to date there has been relatively little research on student learning of analog…
Descriptors: Electronics, Physics, Science Education, Engineering Education
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Dounas-Frazer, Dimitri R.; Van De Bogart, Kevin L.; Stetzer, MacKenzie R.; Lewandowski, H. J. – Physical Review Physics Education Research, 2016
We explore the overlap of two nationally recognized learning outcomes for physics lab courses, namely, the ability to model experimental systems and the ability to troubleshoot a malfunctioning apparatus. Modeling and troubleshooting are both nonlinear, recursive processes that involve using models to inform revisions to an apparatus. To probe the…
Descriptors: Role, Science Instruction, Physics, Outcomes of Education
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Safadi, Rafi; Safadi, Ekhlass; Meidav, Meir – Physics Education, 2017
This study compared students' learning in troubleshooting and problem solving activities. The troubleshooting activities provided students with solutions to conceptual problems in the form of refutation texts; namely, solutions that portray common misconceptions, refute them, and then present the accepted scientific ideas. They required students…
Descriptors: Science Instruction, Physics, Group Discussion, Comparative Analysis
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Electronic Industries Foundation, Washington, DC. – 1994
This manual identifies the standard skills required of a work-ready, entry-level electronics technician. It provides a valuable resource for these groups: students considering careers as electronics technicians; for counselors, educators, and administrators; and for employers. An introduction discusses use of the standards and includes two lists…
Descriptors: Basic Skills, Communications, Competence, Competency Based Education
Electronic Industries Foundation, Washington, DC. – 1994
This supplement to "Raising the Standard" details the knowledge and skills required to successfully achieve competence in each of the tasks identified in the standards manual. It is divided into five sections that correspond to the five skill categories for entry-level electronics technician: additional skills, desirable behavior and work habits,…
Descriptors: Basic Skills, Communications, Competence, Competency Based Education