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Suzanne Brahmia

Publications and source records attributed to Suzanne Brahmia.

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Developing Mathematical Creativity with Physics Invention Tasks

Modeling the creative mathematical sensemaking that characterizes expert thinking in physics is typically a struggle for new learners. To help students learn to reason this way, we created a set of supplemental activities called Physics Invention Tasks (PITs)*. PITs engage students in quantification, the process of mathematically generating quantities central to modeling in physics. PITs depict a scenario in which students need to engage in decision-making associated with creating quantities in order to resolve a problem. Students make decisions about the arithmetic construction, the magnitude and associated unit, and in some cases spatial direction of a new quantity. The design of PITs is informed by Inventing with Contrasting Cases, an instructional approach shown to foster generativity, i.e., creativity with mathematical structures. In this paper, we describe the theoretical foundation of PITs, and their structure and implementation. We share preliminary observations of the impact of PITs in one course, averaged over two years, as measured by the FCI and CLASS. We see an improvement in the FCI normalized gain corresponding to the introduction of PITS and we see CLASS pre- to post-test gains that may be the highest reported from a large enrollment calculus-based physics course. We discuss future research into the learning mechanisms and instructor influence associated with PITs. *available at http://inventiontasks.physics.rutgers.edu

physics.ed-ph

Student facility with ratio and proportion: Mapping the reasoning space in introductory physics

Six specific modes of reasoning about ratio and proportion have been delineated as a means of operationalizing expert practice. These modes stem from consideration of how physicists reason in context, are informed by prior work in physics and mathematics education, and have grain size matched to the steps in reasoning needed to solve problems commonly used in physics instruction. A suite of assessment questions has been developed and validated to probe student facility with the reasoning modes. Responses to open-ended and multiple-choice versions of the assessment questions have been collected from more than 3000 students at Western Washington University, Rutgers University, and New Mexico State University. Results have been used to identify specific reasoning difficulties, to document differences in performance between student populations, and to explore the effect of question context on student reasoning. We find that students enrolled in university physics courses have difficulty interpreting and applying ratios in context, and in many cases lack facility with the reasoning underlying basic arithmetic operations of division and multiplication.

physics.ed-ph