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Stieff, Mike – Science Education, 2011
Imagistic reasoning appears to be a critical strategy for learning and problem solving in the sciences, particularly chemistry; however, little is known about how students use imagistic reasoning on genuine assessment tasks in chemistry. The present study employed a think-aloud protocol to explore when and how students use imagistic reasoning for…
Descriptors: Protocol Analysis, Organic Chemistry, Problem Solving, Science Instruction
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Cheung, Derek – Chemistry Education Research and Practice, 2009
Secondary school chemistry teachers' understanding of chemical equilibrium was investigated through interviews using the think-aloud technique. The interviews were conducted with twelve volunteer chemistry teachers in Hong Kong. Their teaching experience ranged from 3 to 18 years. They were asked to predict what would happen to the equilibrium…
Descriptors: Protocol Analysis, Chemistry, Problem Solving, Foreign Countries
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Carrithers, David; Ling, Teresa; Bean, John C. – Business Communication Quarterly, 2008
This article investigates the critical thinking difficulties of finance majors when asked to address ill-structured finance problems. The authors build on previous research in which they asked students to analyze an ill-structured investment problem and recommend a course of action. The results revealed numerous critical thinking weaknesses,…
Descriptors: Majors (Students), Protocol Analysis, Audiences, Problem Sets
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Van Den Brink, Jan – For the Learning of Mathematics, 1989
Presents a number of transcript examples of correct and incorrect transferences by children. Considers the objects of transference including spoken words, written symbols, models and diagrams, arithmetic procedures, and structures. Discusses the use of transference in arithmetic education. (YP)
Descriptors: Arithmetic, Computation, Elementary Education, Elementary School Mathematics
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Stewart, Jim; Dale, Michael – Science Education, 1989
Investigates high school students' understanding of the physical relationship of chromosomes and genes as expressed in their conceptual models and in their ability to manipulate the models to explain solutions to dihybrid cross problems. Describes three typical models and three students' reasoning processes. Discusses four implications. (YP)
Descriptors: Algorithms, Biology, Concept Formation, Fundamental Concepts