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Showing 1 to 15 of 16 results Save | Export
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Martinie, Sherri L. – Mathematics Teaching in the Middle School, 2014
How can a simple dot--the decimal point--be the source of such frustration for students and teachers? As the author worked through her own frustrations, she found that her students seemed to fall into groups in terms of misconceptions that they revealed when talking about and working with decimals. When asking students to illustrate their thinking…
Descriptors: Mathematics Instruction, Secondary School Mathematics, Middle School Students, Mathematical Concepts
Newton, Douglas P. – Routledge, Taylor & Francis Group, 2011
At a time when league tables can be everything, examination grades matter. Perhaps more than many would admit, the cost is a lack of understanding. The new edition of this book provides practical advice about how to support understanding in both children and adults. It is for all teachers and lecturers, experienced or otherwise, who want learners…
Descriptors: Teaching Methods, Comprehension, Electronic Learning, Cognitive Processes
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Koumaras, P.; And Others – School Science Review, 1996
Focuses on the provision of meaningful counterintuitive experimental evidence for students while taking into account the relations of theory, instruments, and experimental data. Discusses the use of experiments designed to test pupils' conceptual framework during the teaching of introductory electricity. (JRH)
Descriptors: Cognitive Processes, Concept Formation, Electricity, Foreign Countries
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Petri, Juergen; Niedderer, Hans – International Journal of Science Education, 1998
Describes one student's learning pathway as a sequence of several metastable conceptions of the atom starting from a planetary model. Displays the final cognitive element as an association of three parallel conceptions. Contains 26 references. (DDR)
Descriptors: Cognitive Processes, Concept Formation, Foreign Countries, High Schools
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Borges, A. Tarciso; Gilbert, John K. – International Journal of Science Education, 1999
Reports on four models that show a possible pattern of progression that may be related to individual acquisition of conceptual knowledge about electricity. Contains 45 references. (DDR)
Descriptors: Cognitive Processes, Concept Formation, Electricity, Foreign Countries
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Hadzigeorgiou, Yannis – School Science Review, 1999
The thinking process does not always start with problem situations that produce cognitive conflict, and the confrontation of students' misconceptions is not always successful as a teaching approach. Contends that curiosity and mystery appear to excite human thinking and could therefore be considered to be the starting point in science teaching and…
Descriptors: Cognitive Processes, Curiosity, Elementary Secondary Education, Higher Education
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Hawkes, Stephen J. – Journal of Chemical Education, 1998
Argues that consideration should be given to whether teaching solubility product calculations is at all useful. Claims that experienced teachers seriously misunderstand and misuse solubility product calculations. (DDR)
Descriptors: Chemical Equilibrium, Chemical Reactions, Chemistry, Cognitive Processes
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Mak, Se-Yuen; Young, Kenneth – School Science Review, 1987
Discusses the commonly held misconceptions on heat and examines potential contributing factors. Defines and provides examples of internal energy and heat. Suggests approaches to the teaching of heat for secondary level students. (ML)
Descriptors: Cognitive Processes, Concept Teaching, Energy, Heat
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Lightman, Alan; Sadler, Philip – Science and Children, 1988
Describes an activity using a large balloon to help children understand that, even though the horizon appears to be flat, the Earth is, indeed, round. Uses a toy ship to reinforce evidence from the first part of the activity. Stresses the importance of confronting naive theories at an early age. (CW)
Descriptors: Cognitive Processes, Earth Science, Elementary Education, Elementary School Science
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Gerver, Mikhail – Quantum, 1992
Challenges the readers comprehension of mathematical induction by presenting four examples of arguments that misrepresent the concept. Discusses the reasons why the arguments lead to false conclusions. (MDH)
Descriptors: Abstract Reasoning, Cognitive Processes, Concept Formation, Enrichment Activities
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Mansfield, Helen M.; Happs, John C. – School Science and Mathematics, 1992
Reports misconceptions identified in students with respect to the topic of parallel lines and the teaching strategies found to be useful in challenging those misconceptions. (11 references) (MDH)
Descriptors: Cognitive Development, Cognitive Processes, Cognitive Structures, Concept Formation
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Philips, William C. – Science Teacher, 1991
Presented is a list of over 50 commonly held misconceptions based on a literature review found in students and adults. The list covers earth science topics such as space, the lithosphere, the biosphere, the atmosphere, the hydrosphere, and the cryosphere. (KR)
Descriptors: Adults, Cognitive Processes, College Science, Concept Formation
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Avital, Shmuel; Barbeau, Edward J. – For the Learning of Mathematics, 1991
Presents 13 examples in which the intuitive approach to solve the problem is often misleading. Presents analysis of these problems for five different sources of misleading intuitive generators: lack of analysis, unbalanced perception, improper analogy, improper generalization, and misuse of symmetry. (MDH)
Descriptors: Cognitive Development, Cognitive Processes, Generalization, Geometric Concepts
Lawson, Anton E.; And Others – 1989
This monograph describes the origins of the learning cycle, related research, and how future research might be conducted to further the understanding of theories of instruction. A wide range of information is synthesized, producing a coherent framework for better understanding the theory of the learning cycle. The monograph identifies various…
Descriptors: Cognitive Development, Cognitive Processes, Cognitive Style, Concept Formation
Osborne, Roger; Freyberg, Peter – 1985
Designed primarily for practicing teachers and for use in pre- and in-service courses in science education, this book focuses on how 10- to 15-year-old children learn science. Findings are analyzed and suggestions are offered for improving the teaching/learning process. Issues are discussed and organized into five major sections. These include:…
Descriptors: Cognitive Processes, Elementary School Science, Elementary Secondary Education, Inservice Teacher Education
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