Promoting pupils' computational thinking skills and self-efficacy: a problem-solving instructional approach

被引:36
作者
Ma, Hongliang [1 ]
Zhao, Mei [1 ]
Wang, Huixin [1 ]
Wan, Xinqi [1 ]
Cavanaugh, Terence W. [2 ]
Liu, Ji [1 ]
机构
[1] Shaanxi Normal Univ, Sch Educ, 199 Changan South Rd, Xian 710062, Shaanxi, Peoples R China
[2] Univ North Florida, Coll Educ & Human Resources, 1 UNF Dr, Jacksonville, FL 32224 USA
来源
ETR&D-EDUCATIONAL TECHNOLOGY RESEARCH AND DEVELOPMENT | 2021年 / 69卷 / 03期
基金
中国国家自然科学基金;
关键词
Problem-solving; IGGIA framework; Computational thinking skills; Computational thinking self-efficacy; Scratch programming; COMPUTER-SCIENCE; GENDER-GAP; SCHOOL; TECHNOLOGY; SCRATCH; DESIGN;
D O I
10.1007/s11423-021-10016-5
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
Computational thinking (CT) is a fundamental skill and an analytical ability that children in the twenty-first century should develop. Students should begin to work with algorithmic problem-solving and computational methods in K-12. Drawing on a conceptual framework (IGGIA) that combines CT and problem-solving, this study designed and implemented an interdisciplinary Scratch course in a primary school, examined the impact of the new problem-solving instructional approach (the adapted IGGIA) on pupils' CT skills and self-efficacy, and explored the gender differences in these two aspects. A pretest-posttest non-equivalent group design was conducted among 63 fifth-grade students in two computer science classes over 14 weeks. Both quantitative and qualitative data were collected through the administration of CT scales, Scratch artifacts analysis and focus group interviews. The results revealed that the adapted IGGIA (1) significantly improved the CT skills of primary school students; (2) had a significant positive impact on pupils' CT self-efficacy, especially on their critical thinking, algorithmic thinking and problem-solving; and (3) significantly enhanced girls' CT skills and self-efficacy. These findings indicated that problem-solving instructional approaches could promote both cognitive and noncognitive aspects of students' deeper computational learning.
引用
收藏
页码:1599 / 1616
页数:18
相关论文
共 64 条
[31]   Closing the gender gap in STEM with friendly male instructors? On the effects of rapport behavior and gender of a virtual agent in an instructional interaction [J].
Kraemer, Nicole C. ;
Karacora, Bilge ;
Lucas, Gale ;
Dehghani, Morteza ;
Ruether, Gina ;
Gratch, Jonathan .
COMPUTERS & EDUCATION, 2016, 99 :1-13
[32]   Review on teaching and learning of computational thinking through programming: What is next for K-12? [J].
Lye, Sze Yee ;
Koh, Joyce Hwee Ling .
COMPUTERS IN HUMAN BEHAVIOR, 2014, 41 :51-61
[33]  
Lykke M, 2014, IEEE GLOB ENG EDUC C, P544, DOI 10.1109/EDUCON.2014.6826146
[34]  
Maddrey, 2011, THESIS NOVA SE U
[35]   Do student self-efficacy and teacher-student interaction quality contribute to emotional and social engagement in fifth grade math? [J].
Martin, Daniel P. ;
Rimm-Kaufman, Sara E. .
JOURNAL OF SCHOOL PSYCHOLOGY, 2015, 53 (05) :359-373
[36]  
Moreno-Leon J., 2015, REDREVISTA ED DISTAN, V46, P1
[37]  
Panoutsopoulos B., 2011, TECHNOL INTERFACE IN, V12, P47
[38]   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
[39]   Learning computer programming: Implementing a fractal in a Turing Machine [J].
Pereira, Hernane B. de B. ;
Zebende, Gilney F. ;
Moret, Marcelo A. .
COMPUTERS & EDUCATION, 2010, 55 (02) :767-776
[40]  
Pillay N., 2005, SIGCSE Bulletin, V37, P107, DOI 10.1145/1113847.1113888