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11 - Mathematics

from Part II - Pedagogy in Interaction

Published online by Cambridge University Press:  16 June 2022

Amelia Church
Affiliation:
University of Melbourne
Amanda Bateman
Affiliation:
Swansea University
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Summary

Early childhood educators are faced daily with supporting young children’s learning in educational environments that include digital technologies. This chapter first discusses what is currently known about young children’s use of digital technologies from health and educational perspectives. Specifically, this chapter shows how young children’s digital technology use in early childhood classrooms is influenced by a range of factors, such as access to digital technology and educator beliefs about the benefits of technology, and how to integrate digital technology in ways that align with early childhood pedagogy. Next, this chapter shows how educators and children engage with digital technologies through employing interactional practices that support inquiry-based learning, problem solving, and conceptual engagement, including digital and critical literacy skills. In this way, it highlights how teacher pedagogy-in-use makes possible children’s rich engagement with digital technologies. Finally, this chapter shows how these understandings are be applied by educators in their own practices.

Type
Chapter
Information
Talking with Children
A Handbook of Interaction in Early Childhood Education
, pp. 227 - 246
Publisher: Cambridge University Press
Print publication year: 2022

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References

Church, A., Mashford-Scott, A., and Cohrssen, C. (2018). Supporting children to resolve disputes. Journal of Early Childhood Research, 16(1), 92103. https://doi.org/10.1177/147671818X171770055414Google Scholar
Clements, D., and Sarama, J. (2021). Learning and Teaching Early Math: The Learning Trajectories Approach (3.ed). New York: Routledge.Google Scholar
Cohrssen, C., and Church, A. (2017). Mathematics knowledge in early childhood: intentional teaching in the third turn. In Bateman, A. and Church, A. (eds.), Children’s Knowledge-in-Interaction. Singapore: Springer. https://doi.org/10.1007/978-981-10-1703-2_5Google Scholar
Cohrssen, C., Church, A., and Tayler, C. (2014a). Pausing for learning: responsive engagement in mathematics activities in early childhood settings. Australasian Journal of Early Childhood, 39(4), 95102.Google Scholar
Cohrssen, C., Church, A., and Tayler, C. (2014b). Purposeful pauses: teacher talk during early childhood mathematics activities. International Journal of Early Years Education, 22(2), 169183. https://doi.org/10.1080/09669760.2014.900476CrossRefGoogle Scholar
Cohrssen, C., de Quadros Wander, B., Page, J., and Klarin, S. (2017). Between the big trees: a project-based approach to investigating shape and spatial thinking in a kindergarten program. Australasian Journal of Early Childhood, 42(1), 94104. https://doi.org/10.23965/AJEC.42.1.011CrossRefGoogle Scholar
Cohrssen, C., and Page, J. (2016). Articulating a rights-based argument for mathematics teaching and learning in early childhood education. Australasian Journal of Early Childhood, 41(3), 104108.Google Scholar
Cohrssen, C., and Pearn, C. (2019). Assessing preschool children’s maps against the first four levels of the primary curriculum: lessons to learn. Mathematics Education Research Journal, 33, 4360. https://doi.org/10.1007/s13394-019-00298-7CrossRefGoogle Scholar
Deans, J., and Cohrssen, C. (2015). Young children dancing mathematical thinking. Australasian Journal of Early Childhood, 40(3), 6167.Google Scholar
Duncan, G. J., Claessens, A., Huston, A., et al. (2007). School readiness and later achievement. Developmental Psychology, 43(6), 14281446.Google Scholar
Egert, F., Dederer, V., and Fukkink, R. G. (2020). The impact of in-service professional development on the quality of teacher-child interactions in early childhood education and care: a meta-analysis. Educational Research Review, 29(1), 100309. https://doi.org/10.1016/j.edurev.2019.100309CrossRefGoogle Scholar
Ehrlich, S. B., Levine, C., and Goldin-Meadow, S. (2006). The importance of gesture in children’s spatial reasoning. Developmental Psychology, 42(6), 12591268.Google Scholar
Elia, I., Gagatsis, A., and van den Heuvel-Panhuizen, M. (2014). The role of gestures in making connections between space and shape aspects and their verbal representations in the early years: findings from a case study. Mathematics Education Research Journal, 26(4), 735761.CrossRefGoogle Scholar
Franzén, K. (2015). Under threes’ mathematical learning. European Early Childhood Education Research Journal, 23(1), 4354. https://doi.org/10.1080/1350293X.2014.970855Google Scholar
Hedge, K., and Cohrssen, C. (2019). Between the red and yellow windows: a fine-grained focus on supporting children’s spatial thinking during play. SAGE Open (online). https://doi.org/10.1177/2158244019809551CrossRefGoogle Scholar
Howes, C., Burchinal, M., Pianta, R., Bryant, D., Early, D., & Clifford, R. (2008). Ready to learn? Children’s pre-academic achievement in pre-kindergarten programs. Early Childhood Research Quarterly, 23, 2750. https://doi.org/10.1016/j.ecresq.2007.05.002Google Scholar
Klibanoff, R., Levine, S., Huttenlocher, J., Vasilyeva, M., and Hedges, L. (2006). Preschool children’s mathematical knowledge: the effect of teacher ‘math talk’. Developmental Psychology, 42(1), 5969.Google Scholar
Lee, J. S., and Ginsburg, H. P. (2009). Early childhood teachers’ misconceptions about mathematics education for young children in the United States. Australasian Journal of Early Childhood, 34(4), 3745.Google Scholar
Levine, S., Whealton Suriyakham, L., Rowe, K., Huttenlocher, J., and Gunderson, E. (2010). What counts in the development of young children’s number knowledge? Developmental Psychology, 46(5), 13091319.Google Scholar
Mushin, I., Gardner, R., and Munro, J. (2013). Language matters in demonstrations of understanding in early years maths assessment. Mathematics Education Research Journal, 25(2), 415433. https://doi.org/DOI 10.1007/s13394-013-0077-4Google Scholar
Newcombe, N. S., and Frick, A. (2010). Early education for spatial intelligence: why, what and how. Mind, Brain and Education, 4(3), 102111.Google Scholar
Nichols, J., Levay, K., O’Neil, M., and Volmert, A. (2019). Reframing early math learning. Available from: https://www.frameworksinstitute.org/publication/reframing-early-math-learning/ [last accessed 5 January 2022].Google Scholar
Peisner-Feinberg, E. S., Burchinal, M. R., Clifford, R. M., Culkin, M. L., Howes, C., Kagan, S. L., and Yazejian, N. (2001). The relation of preschool child-care quality to children’s cognitive and social developmental trajectories through second grade. Child Development, 72(5), 15341553. https://doi.org/10.1111/1467-8624.00364CrossRefGoogle ScholarPubMed
Pianta, R., La Paro, K., and Hamre, B. K. (2008). Classroom Assessment Scoring System (CLASS) Manual, pre-K. Baltimore, MD: Paul H. Brookes Publishing Co.Google Scholar
Pollitt, R., Cohrssen, C., Church, A., and Wright, S. (2015). Thirty-one is a lot! Assessing four-year-old children’s number knowledge during an open-ended activity. Australasian Journal of Early Childhood, 40(1), 1322.CrossRefGoogle Scholar
Sacks, H., Schegloff, E. A., and Jefferson, G. (1974). A simplest systematics for the organization of turn-taking for conversation. Language, 50(4), 696735. http://www.jstor.org/stable/412243Google Scholar
Sidnell, J., and Stivers, T. (eds.). (2013). The Handbook of Conversation Analysis. Chichester: John Wiley.Google Scholar
Siraj, I., and Asani, R. (2015). The role of sustained shared thinking, play and metacognition in children’s learning. In Robson, S. and Quinn, S. (eds.), Routledge International Handbook of Young Children’s Thinking (pp. 403415). Abingdon: Routledge.Google Scholar
ten Have, P. (2007). Doing Conversation Analysis: A Practical Guide (2nd ed.). London: Sage Publications.Google Scholar
Uscianowski, C., Almeda, M. V., and Ginsburg, H. P. (2020). Differences in the complexity of math and literacy questions parents pose during storybook reading. Early Childhood Research Quarterly, 50, 4050. https://doi.org/10.1016/j.ecresq.2018.07.003Google Scholar

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