Measuring the effectiveness of programmed instructions (PI) to learn design thinking concepts for secondary school students

被引:0
作者
Bhatt, Apoorv Naresh [1 ]
Chakrabarti, Amaresh [1 ]
机构
[1] Indian Inst Sci IISc, Dept Design & Mfg, Bangalore, India
关键词
design thinking; K-12; education; design thinking concepts; programmed instructions; instructional design; design thinking process; FEEDBACK;
D O I
10.1017/dsj.2024.47
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Self-instructional media in education has the potential to address educational challenges such as accessibility, flexible and personalised learning, real-time assessment and resource efficiency. The objectives of this study are to (1) develop programmed instructions to teach design thinking concepts and (2) investigate its effects on secondary school students' understanding of these concepts. A design thinking workshop was conducted with secondary school students; subsequently, their understanding of design thinking concepts gained through digital programmed instructions was evaluated. The study involved 33 novice secondary school students from grades 6 to 9 in India, who worked in teams to find and solve real-life, open-ended, complex problems during the workshop using the design thinking process. Data on (i) the individual performance in understanding design thinking concepts and (ii) team performance in design problem finding and solving were collected using individual tests and teams' outcome evaluations, respectively. Students' perceptions of the effectiveness of the programmed instructions for supporting understanding of the concepts were also captured. Results show the positive effects on students' understanding of design thinking concepts as well as on their problem-finding and solving skills. The results justify the use of programmed instructions in secondary school curricula to advance design thinking concepts. The current version of programmed instruction has limitations, including the absence of branching mechanisms, a detailed feedback system, multimodal content and backend functionalities. Future work will aim to address these issues and overcome these shortcomings.
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页数:33
相关论文
共 59 条
[1]  
Abdulwahed M., 2015, Advances in engineering education in the Middle East and North Africa: current status, and future insights
[2]   Motivation and cognitive load in the flipped classroom: definition, rationale and a call for research [J].
Abeysekera, Lakmal ;
Dawson, Phillip .
HIGHER EDUCATION RESEARCH & DEVELOPMENT, 2015, 34 (01) :1-14
[3]  
Aflatoony L., 2015, Proceedings of 3rd International Conference for Design Education Researchers, P1, DOI [10.13140/RG.2.1.5001.8409, DOI 10.13140/RG.2.1.5001.8409]
[4]   Becoming a Design Thinker: Assessing the Learning Process of Students in a Secondary Level Design Thinking Course [J].
Aflatoony, Leila ;
Wakkary, Ron ;
Neustaedter, Carman .
INTERNATIONAL JOURNAL OF ART & DESIGN EDUCATION, 2018, 37 (03) :438-453
[5]  
Alhabeeb A, 2017, INT J EDUC MANAG, V31, P131, DOI 10.1108/IJEM-01-2016-0006
[6]   cTRAIN: A computer-aided training system developed in SuperCard for teaching skills using behavioral education principles [J].
Anger, WK ;
Rohlman, DS ;
Kirkpatrick, J ;
Reed, RR ;
Lundeen, CA ;
Eckerman, DA .
BEHAVIOR RESEARCH METHODS INSTRUMENTS & COMPUTERS, 2001, 33 (02) :277-281
[7]  
Arlitt R., 2019, P DES SOC INT C ENG, V1, P3891
[8]  
Bhatt Apoorv Naresh, 2021, Design for TomorrowVolume 2. Proceedings of ICoRD 2021. Smart Innovation, Systems and Technologies (SIST 222), P335, DOI 10.1007/978-981-16-0119-4_27
[9]  
Bhatt A. N., 2019, International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, V59216, pV003T04A010, DOI [10.1115/DETC2019-98066, DOI 10.1115/DETC2019-98066]
[10]   Gamification of design thinking: a way to enhance effectiveness of learning [J].
Bhatt, Apoory Naresh ;
Chakrabarti, Amaresh .
AI EDAM-ARTIFICIAL INTELLIGENCE FOR ENGINEERING DESIGN ANALYSIS AND MANUFACTURING, 2022, 36