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Schmidt-Borcherding, Florian; Hänze, Martin; Wodzinski, Rita; Rincke, Karsten – European Journal of Psychology of Education, 2013
The study explores if established support devices for paper-pencil problem solving, namely worked examples and incremental scaffolds, are applicable to laboratory tasks. N?=?173 grade eight students solved in dyads a physics laboratory task in one of three conditions. In condition A (unguided problem solving), students were asked to determine the…
Descriptors: Scaffolding (Teaching Technique), Laboratory Experiments, Physics, Science Instruction
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Campbell, Todd; Dowdle, Gayle; Shelton, Brett E.; Olsen, Jeffrey; Longhurst, Max; Beckett, Harrison – Science Activities: Classroom Projects and Curriculum Ideas, 2013
Gaming, an integral part of many students' lives outside school, can provide an engaging platform for focusing students on important disciplinary core concepts as an entry into developing students' understanding of these concepts through science practices. This article highlights how S'cape can be used to support student learning aligned with the…
Descriptors: Video Games, Science Instruction, Science Experiments, Inquiry
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Booth, Julie L.; Koedinger, Kenneth R. – British Journal of Educational Psychology, 2012
Background: High school and college students demonstrate a verbal, or textual, advantage whereby beginning algebra problems in story format are easier to solve than matched equations (Koedinger & Nathan, 2004). Adding diagrams to the stories may further facilitate solution (Hembree, 1992; Koedinger & Terao, 2002). However, diagrams may not…
Descriptors: Student Problems, Problem Solving, Grade 8, Grade 6
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Waalkens, Maaike; Aleven, Vincent; Taatgen, Niels – Computers & Education, 2013
Intelligent tutoring systems (ITS) support students in learning a complex problem-solving skill. One feature that makes an ITS architecturally complex, and hard to build, is support for strategy freedom, that is, the ability to let students pursue multiple solution strategies within a given problem. But does greater freedom mean that students…
Descriptors: Intelligent Tutoring Systems, Problem Solving, Algebra, Mathematics Instruction
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Schwartz, Daniel L.; Chase, Catherine C.; Oppezzo, Marily A.; Chin, Doris B. – Journal of Educational Psychology, 2011
Being told procedures and concepts before problem solving can inadvertently undermine the learning of deep structures in physics. If students do not learn the underlying structure of physical phenomena, they will exhibit poor transfer. Two studies on teaching physics to adolescents compared the effects of "telling" students before and after…
Descriptors: Learning Strategies, Physics, Problem Solving, Word Problems (Mathematics)
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Bennett, Randy Elliot; Persky, Hilary; Weiss, Andy; Jenkins, Frank – Journal of Technology, Learning, and Assessment, 2010
This paper describes a study intended to demonstrate how an emerging skill, problem solving with technology, might be measured in the National Assessment of Educational Progress (NAEP). Two computer-delivered assessment scenarios were designed, one on solving science-related problems through electronic information search and the other on solving…
Descriptors: National Competency Tests, Problem Solving, Technology Uses in Education, Computer Assisted Testing
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Van Dooren, Wim; De Bock, Dirk.; Hessels, An; Janssens, Dirk; Verschaffel, Lieven – Learning and Instruction, 2004
Already at a very young age, children experience the wide applicability and intrinsic simplicity of linear/proportional relations. In primary and secondary school mathematics education, moreover, extensive attention is paid to this type of relations. In the long run, students develop the misbelief that each relation can be quantified as…
Descriptors: Secondary School Students, Secondary School Mathematics, Grade 8, Experiments
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Lobato, Joanne; Clarke, David; Ellis, Amy Burns – Journal for Research in Mathematics Education, 2005
We address the telling/not-telling dilemma in mathematics education. Telling is instructionally important, but has been downplayed because of (a) perceived inconsistencies between telling and constructivism, (b) increased awareness of the negative consequences of relying too heavily on telling, and (c) a focus on "non-telling" actions as…
Descriptors: Mathematics Education, Constructivism (Learning), Experiments, Intention
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Bakker, Arthur – Statistics Education Research Journal, 2004
This paper examines ways in which coherent reasoning about key concepts such as variability, sampling, data, and distribution can be developed as part of statistics education. Instructional activities that could support such reasoning were developed through design research conducted with students in grades 7 and 8. Results are reported from a…
Descriptors: Middle Schools, Grade 8, Cognitive Development, Sampling
Novotna, Jarmila, Ed.; Moraova, Hana, Ed.; Kratka, Magdalena, Ed.; Stehlikova, Nad'a, Ed. – International Group for the Psychology of Mathematics Education, 2006
This document contains the second volume of the proceedings of the 30th Annual Conference of the International Group for the Psychology of Mathematics Education. Conference presentations are centered around the theme "Mathematics at the Centre." This volume features 60 research reports by presenters with last names beginning between Abr…
Descriptors: Program Effectiveness, Foreign Countries, Middle Schools, Textbooks