Hybrid tasks: Promoting statistical thinking and critical thinking through the same mathematical activities
Tipo de documento
Autores
Lista de autores
Aizikovitsh-Udi, Einav, Clarke, David y Kuntze, Sebastian
Resumen
Even though statistical thinking and critical thinking appear to have strong links from a theoretical point of view, empirical research into the intersections and potential interrelatedness of these aspects of competence is scarce. Our research suggests that thinking skills in both areas may be interdependent. Given this interconnection, it should be possible to stimulate both forms of thinking through the one task. This paper explores the implications of an exploratory qualitative study into processes when working on tasks encompassing both these areas for the design of tasks that simultaneously stimulate critical thinking and domain-specific thinking.
Fecha
2014
Tipo de fecha
Estado publicación
Términos clave
Crítico | Diseño | Estadística
Enfoque
Nivel educativo
Educación secundaria básica (12 a 16 años) | Educación superior, formación de pregrado, formación de grado
Idioma
Revisado por pares
Formato del archivo
Referencias
Aizikovitsh-Udi, E. (2012). Developing critical thinking through probability models, intuitive judgments and decision-making under uncertainty. Published doctoral dissertation. Saarbrucken, Germany: LAP Lambert Academic Publishing. Aizikovitsh-Udi, E., & Amit, M. (2008). Developing critical thinking in probability lesson. In O. Figueras, J. L. Cortina, S. Alatorre, T. Rojano, & A. Sepúlveda (Eds.), Proceedings of the Conference of the International Group for the Psychology of Mathematics Education (Vol. 2, pp. 9-13). Morelia, México: Universidad Michoacana de San Nicolás de Hidalgo. Clarke, D. J., Goos, M., & Morony, W. (2007). Problem solving and working mathematically: An Australian perspective. Zentralblatt für Didaktik der Mathematik (ZDM International Journal of Mathematics Education), 39, 475- 490. Clarke, D. J., & Helme, S. (1998). Context as construction. In O. Bjorkqvist (Ed.), Mathematics teaching from a constructivist point of view (pp. 129-147). Vasa, Finland: Faculty of Education, Abo Akademi University. Doyle, W. (1983). Academic work. Review of Educational Research, 53, 159- 199. Doyle, W. (1988). Work in mathematics classes: The context of students’ thinking during instruction. Educational Psychologist, 23, 167-180. Ennis, R. R. (1989). Critical thinking and subject specificity: Clarification and needed research. Educational Researcher, 18, 4-10. Ennis, R. H., & Millman, J. (2005). Cornell critical thinking test, level Z (5th ed.). Seaside, CA: The CT Company. Gal, I. (2004). Statistical literacy, meanings, components, responsibilities. In D. Ben-Zvi & J. Garfield (Eds.), The challenge of developing statistical literacy, reasoning and thinking (pp. 47-78). Dordrecht, The Netherlands: Kluwer. Hiebert, J., Gallimore, R., Garnier, H., Givvin, K. B., Hollingsworth, H., Jacobs, J., et al. (2003). Teaching mathematics in seven countries: Results from the TIMSS 1999 video study. Washington, DC: NCES. Hiebert, J., & Wearne, D. (1993). Instructional tasks, classroom discourse, and students’ learning in second-grade arithmetic. American Educational Research Journal, 30, 393-425. Kröpfl, B., Peschek, W., & Schneider, E. (2000). Stochastik in der Schule: globale ideen, lokale bedeutungen, zentrale tätigkeiten. [Stochastics in school: Global ideas, local significances, central activities]. Mathematica Didactica, 23(2), 25-57. Kuntze, S., Lindmeier, A., & Reiss, K. (2008). “Using models and representations in statistical contexts” as a sub-competency of statistical literacy–Results from three empirical studies. In R. Biehler & M. Shaughnessy (Eds.), Proceedings of the 11th International Congress on Mathematics Education. Monterrey, Mexico: International Congress on Mathematical Education. Mesiti, C., & Clarke, D. J. (2010). A functional analysis of mathematical tasks in China, Japan, Sweden, Australia and the U.S.A: Voice and agency. In Y. Shimizu, B. Kaur, R. Huang, & D. J. Clarke (Eds.), Mathematical tasks in Aizikovitsh-Udi, E., & Amit, M. (2008). Developing critical thinking in probability lesson. In O. Figueras, J. L. Cortina, S. Alatorre, T. Rojano, & A. Sepúlveda (Eds.), Proceedings of the Conference of the International Group for the Psychology of Mathematics Education (Vol. 2, pp. 9-13). Morelia, México: Universidad Michoacana de San Nicolás de Hidalgo. Clarke, D. J., Goos, M., & Morony, W. (2007). Problem solving and working mathematically: An Australian perspective. Zentralblatt für Didaktik der Mathematik (ZDM International Journal of Mathematics Education), 39, 475- 490. Clarke, D. J., & Helme, S. (1998). Context as construction. In O. Bjorkqvist (Ed.), Mathematics teaching from a constructivist point of view (pp. 129-147). Vasa, Finland: Faculty of Education, Abo Akademi University. Doyle, W. (1983). Academic work. Review of Educational Research, 53, 159- 199. Doyle, W. (1988). Work in mathematics classes: The context of students’ thinking during instruction. Educational Psychologist, 23, 167-180. Ennis, R. R. (1989). Critical thinking and subject specificity: Clarification and needed research. Educational Researcher, 18, 4-10. Ennis, R. H., & Millman, J. (2005). Cornell critical thinking test, level Z (5th ed.). Seaside, CA: The CT Company. Gal, I. (2004). Statistical literacy, meanings, components, responsibilities. In D. Ben-Zvi & J. Garfield (Eds.), The challenge of developing statistical literacy, reasoning and thinking (pp. 47-78). Dordrecht, The Netherlands: Kluwer. Hiebert, J., Gallimore, R., Garnier, H., Givvin, K. B., Hollingsworth, H., Jacobs, J., et al. (2003). Teaching mathematics in seven countries: Results from the TIMSS 1999 video study. Washington, DC: NCES. Hiebert, J., & Wearne, D. (1993). Instructional tasks, classroom discourse, and students’ learning in second-grade arithmetic. American Educational Research Journal, 30, 393-425. Kröpfl, B., Peschek, W., & Schneider, E. (2000). Stochastik in der Schule: globale ideen, lokale bedeutungen, zentrale tätigkeiten. [Stochastics in school: Global ideas, local significances, central activities]. Mathematica Didactica, 23(2), 25-57. Kuntze, S., Lindmeier, A., & Reiss, K. (2008). “Using models and representations in statistical contexts” as a sub-competency of statistical literacy–Results from three empirical studies. In R. Biehler & M. Shaughnessy (Eds.), Proceedings of the 11th International Congress on Mathematics Education. Monterrey, Mexico: International Congress on Mathematical Education. Mesiti, C., & Clarke, D. J. (2010). A functional analysis of mathematical tasks in China, Japan, Sweden, Australia and the U.S.A: Voice and agency. In Y. Shimizu, B. Kaur, R. Huang, & D. J. Clarke (Eds.), Mathematical tasks inclassrooms around the world (pp. 185-216). Rotterdam, The Netherlands: Sense Publishers. McPeck, J. (1981). Critical thinking and education. New York, NY: St. Martin’s Press. Reading, C. (2002), Profile for statistical understanding. In B. Phillips (Ed.), Proceedings of the Sixth International Conference on Teaching Statistics. Cape Town, South Africa: International Association for Statistical Education. Stodolsky, S. (1988). The subject matters: Classroom activity in math and social studies. Chicago, IL: The University of Chicago Press. Wallman, K. (1993). Enhancing statistical literacy: Enriching our society. Journal of the American Statistical Association, 88(421), 1-8. Watson, J. M. (1997). Assessing statistical thinking using the media. In I. Gal & J. B. Garfield (Eds.), The assessment challenge in statistics education (pp. 107-121). Israel/United States: IOS Press. Watson, J., & Callingham, R. (2003). Statistical literacy: A complex hierarchical construct. Statistics Education Research Journal, 2(2), 3-46.