Science teachers can teach computational thinking through distributed expertise

被引:11
作者
Tucker-Raymond, Eli [1 ]
Cassidy, Michael [2 ]
Puttick, Gillian [2 ]
机构
[1] Boston Univ, Earl Ctr Learning & Innovat, 55 Pilgrim Rd, Boston, MA 02215 USA
[2] TERC, 2067 Massachusetts Ave, Cambridge, MA 02140 USA
基金
美国国家科学基金会;
关键词
Distributed learning environments; Teaching; learning strategies; Elementary education; Pedagogical issues; Applications in subject areas; MATHEMATICS; IMPLEMENTATION; EXPERIENCE; SCRATCH; SPACES; GOALS;
D O I
10.1016/j.compedu.2021.104284
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Content area K-12 teachers are increasingly asked to integrate computing and computational thinking into their classrooms, yet they often have little experience with computing. The purpose of this study was to understand how science teachers, new to computing and integrating computational thinking into their classrooms, supported students as computational problem solvers. In the project from which this research was drawn, 8th grade science teachers in three US school districts integrated computer game design into their study of climate systems and climate change. We conducted participant observation, collected teacher implementation logs and interviewed 15 teachers engaged in the three-year design research project, Building Systems from Scratch. Analysis through grounded theory yielded several results related to teachers' orientations, strategies, and use of resources to create systems of distributed expertise. We identified five major themes: a) releasing responsibility to students, b) co-learning with students, c) encouraging students' independent problem solving, d) building interdependence among students, and e) providing multiple other resources. Findings are discussed in relation to the literature on integrating computational thinking into content area classrooms.
引用
收藏
页数:15
相关论文
共 92 条
[51]   Assessing In-service Teachers' Development of Computational Thinking Practices in Teacher Development Courses [J].
Kong, Siu-Cheung ;
Lao, Andrew Chan-Chio .
SIGCSE '19: PROCEEDINGS OF THE 50TH ACM TECHNICAL SYMPOSIUM ON COMPUTER SCIENCE EDUCATION, 2019, :976-982
[52]   Teacher development in computational thinking: Design and learning outcomes of programming concepts, practices and pedagogy [J].
Kong, Siu-Cheung ;
Lai, Ming ;
Sun, Daner .
COMPUTERS & EDUCATION, 2020, 151
[53]   Computational Thinking from a Disciplinary Perspective: Integrating Computational Thinking in K-12 Science, Technology, Engineering, and Mathematics Education [J].
Lee, Irene ;
Grover, Shuchi ;
Martin, Fred ;
Pillai, Sarita ;
Malyn-Smith, Joyce .
JOURNAL OF SCIENCE EDUCATION AND TECHNOLOGY, 2020, 29 (01) :1-8
[54]   Computational Thinking Integration Patterns Along the Framework Defining Computational Thinking from a Disciplinary Perspective [J].
Lee, Irene ;
Malyn-Smith, Joyce .
JOURNAL OF SCIENCE EDUCATION AND TECHNOLOGY, 2020, 29 (01) :9-18
[55]   Engaging youth in computational thinking practices through designing place-based mobile games about local issues [J].
Litts, Breanne K. ;
Lewis, Whitney E. ;
Mortensen, Chase K. .
INTERACTIVE LEARNING ENVIRONMENTS, 2020, 28 (03) :302-315
[56]  
Lye S. Y., 2018, Computational Thinking in the STEM Disciplines, P227, DOI 10.1007/978-3-319-93566-9
[57]  
National Research Council, 2015, WORKSH PED ASP COMP
[58]  
NGSS Lead States, 2013, Next Generation Science Standards, DOI DOI 10.17226/18290
[59]   Exploring children's learning experience in constructionism-based coding activities through design-based research [J].
Papavlasopoulou, Sofia ;
Giannakos, Michail N. ;
Jaccheri, Letizia .
COMPUTERS IN HUMAN BEHAVIOR, 2019, 99 :415-427
[60]   Teachers' beliefs about issues in the implementation of a student-centered learning environment [J].
Pedersen, S ;
Liu, M .
ETR&D-EDUCATIONAL TECHNOLOGY RESEARCH AND DEVELOPMENT, 2003, 51 (02) :57-76