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Joshua Samani; Steven C. Pan – npj Science of Learning, 2021
We investigated whether continuously alternating between topics during practice, or interleaved practice, improves memory and the ability to solve problems in undergraduate physics. Over 8 weeks, students in two lecture sections of a university-level introductory physics course completed thrice-weekly homework assignments, each containing problems…
Descriptors: Undergraduate Students, Physics, Science Instruction, Problem Solving
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Voice, Alison; Stirton, Arran – New Directions in the Teaching of Physical Sciences, 2020
The use of spaced repetition within a physics higher education thermodynamics module has been analysed for: its pattern of use by students; its effect on memory and performance in the end of module exam; and performance in a delayed test after the summer vacation. A custom-built web app with the facility to generate a personalised repetition…
Descriptors: STEM Education, Physics, Higher Education, Thermodynamics
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Reiner, Miriam – Interchange: A Quarterly Review of Education, 2006
This paper takes a cognitive perspective in an attempt to analyze mental mechanisms involved in contextual learning. In the following, it is suggested that contextualized environments evoke mental mechanisms that support reasoning about "what if", imaginary situations--utilizing a powerful mental mechanism known from the history of physics as…
Descriptors: Physics, Thinking Skills, Memory, Schemata (Cognition)
Bao, Lei; Redish, Edward F. – 2001
Multiple-choice tests such as the Force Concept Inventory (FCI) provide useful instruments to probe the distribution of student difficulties on a large scale. However, traditional analysis often relies solely on scores (number of students giving the correct answer). This ignores what can be significant and important information: the distribution…
Descriptors: Higher Education, Learning Processes, Memory, Multiple Choice Tests