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Variability of worked examples and transfer of geometrical problem-solving skills: A cognitive-load approach.

Journal of Educational Psychology · 1994 · Vol. 86(1) · pp. 122–133
Fred PaasJeroen J. G. van Merriënboer

Abstract

Four computer-based training strategies for geometrical problem solving in the domain of computer numerically controlled machinery programming were studied with regard to their effects on training performance, transfer performance, and cognitive load. A low- and a high-variability conventional condition, in which conventional practice problems had to be solved (followed by worked examples), were compared with a low- and a high-variability worked condition, in which worked examples had to be studied. Results showed that students who studied worked examples gained most from high-variability examples, invested less time and mental effort in practice, and attained better and less effort-demanding transfer performance than students who first attempted to solve conventional problems and then studied work examples.

Visual and Cognitive Learning ProcessesIntelligent Tutoring Systems and Adaptive LearningAI-based Problem Solving and PlanningPsychologyTransfer of trainingCognitionCognitive loadCognitive psychologyMathematics educationTransfer (computing)Teaching methodComputer science
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Variability of worked examples and transfer of geometrical problem-solving skills: A cognitive-load approach. · Scinovex