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Analyzing the effectiveness and teachers' needs in a teacher training program for maker-centered education

메이커 중심 교육 활성화를 위한 교원 연수 프로그램 효과 및 교사 요구사항 분석

  • Park, Taejung (College of Liberal Arts, Kyonggi University) ;
  • Cha, Hyunjin (School of General Education, Dankook University)
  • 박태정 (경기대학교 융합교양대학) ;
  • 차현진 (단국대학교 교양교육대학)
  • Received : 2019.03.05
  • Accepted : 2019.03.25
  • Published : 2019.04.30

Abstract

This research aims to explore the direction to promote maker-centered education and draw implications on the design and practice of teacher's professional development program by studying a case. To achieve the research objective, the research context was set on a teacher's training program provided by the S district office of education in Seoul, and the quantitative and qualitative studies were conducted to deduce the teacher's requirements for establishing and promoting maker-centered education after participating in the program as well as analyzing the effectiveness of the 5-days training program. From the results, this study contributes to suggesting implications on activating maker-centered education and providing the curriculum and instructional designs of teacher's professional development through the case participated by teachers who play a crucial role in performing and practicing innovative teaching methods and educational policy in real educational contexts.

본 연구는 메이커 교육에 대한 교원 역량 강화 프로그램의 사례를 살펴봄으로써, 향후 메이커 중심 교육을 위한 교사 연수 프로그램 설계 및 실행에 대한 시사점을 도출하고 메이커 교육이 교육 현장에 정착하기 위한 방향을 탐색하는데 목적이 있다. 이를 위해 S구 교육지원청에서 제공한 메이커 교육 교원 연수 프로그램을 연구 문맥으로 설정하고, 5일간 구성된 교사 역량강화 연수 프로그램에서의 효과 분석과 연수 프로그램 후 교사들이 제안하는 메이커 중심 교육의 현장 정착 및 활성화를 요구사항을 도출하고자 양적 및 질적 연구를 수행하였다. 본 연구의 결과로부터 교육현장에서 혁신적인 교수 방법과 정책을 도입할 때 가장 중요한 역할을 담당하고 있는 교사들이 참여한 교원 연수 프로그램의 사례를 통해 교원 양성 프로그램 설계 방향과 메이커 중심 교육의 활성화를 위한 시사점을 도출하였다는 점에서 의의가 있다.

Keywords

References

  1. Byun, M.K., Jo, J.H. & Jo, M.H. (2015). Analysis of Learner's Motivation and Satisfaction with 3D Printing in Science Classroom. Journal of the Korean association for science education, 35(5), 877-884. https://doi.org/10.14697/jkase.2015.35.5.0877
  2. Byun, M.K. & Choi, I.S. (2018). Exploring the Direction of Korean Maker Education for Activating Maker s Movement in the 4th Industrial Revolution. Journal of engineering education research, 21, 39-50. https://doi.org/10.18108/jeer.2018.21.2.39
  3. Cha, H.J. & Park, T.J. (2018). A development of recommendations to promote maker education at the Korean primary & secondary school level in Korea through analysis of global maker education best practice. Journal of digital convergence, 16(11), 97-113. https://doi.org/10.14400/JDC.2018.16.11.097
  4. Choi, H.K. (2017). The Discursive Topography in Maker Culture A Critical Discourse Analysis of 'Maker Movement'. Korean Journal of Communication & Information, 82, 73-103. https://doi.org/10.46407/kjci.2017.04.82.73
  5. Choi, H.S. & Kim, M.S. (2017). Designing a New Teacher Education Course for Integrating Design Thinking with Computational Thinking. Journal of the Korean Association of Information Education, 21(3), 343-350. https://doi.org/10.14352/jkaie.21.3.343
  6. Choi, H.S. & Kim, M.S. (2017). Connecting design thinking and computational thinking in the context of Korean primary school teacher education. In Proceedings of International Conference on Computational Thinking Education 2017. Hong Kong.
  7. Clapp, E.P., Ross, J., Ryan, J.O. & Tishman, S. (2016). Maker-centered learning: Empowering young people to shape their worlds. John Wiley & Sons.
  8. Dougherty, D. (2012). The maker movement. Innovations: Technology, Governance, Globalization, 7(3), 11-14. https://doi.org/10.1162/INOV_a_00135
  9. Elo, S. & Kyngas, H. (2008). The qualitative content analysis process, Journal of Advanced Nursing, 62(1), 107-115. https://doi.org/10.1111/j.1365-2648.2007.04569.x
  10. Glazewski, K.D. & McKay, C.S. (2016). Designing Maker-Based Instruction. In C M. Reigeluth, B. J. Beatty, & R. D Myers (Eds.), Instructional-Design Theories and Models, Volume IV (pp. 161-188). New York: Routledge.
  11. Hatch, M. (2014). The maker movement manifesto: rules for innovation in the new world of crafters, hackers, and tinkerers. New York: McGraw-Hill Education.
  12. Halverson, E.R., & Sheridan, K. (2014). The Maker Movement in Education. Harvard Educational Review, 84(4), 495-504. https://doi.org/10.17763/haer.84.4.34j1g68140382063
  13. Hong, J.S. & Jang, H.Y. (2018). Exploring the Development and Possibility of Learning Program based on 'Design Thinking' in Elementary Schools. The Journal of Learner-Centered Curriculum and Instruction, 18(22), 1309-1337. https://doi.org/10.22251/jlcci.2018.18.22.1309
  14. Hur, K. Lee, J.Y., Lee, H.M. & Lee, H.S. (2015). Development of Education Program for Physical Computing using Arduino N-screen Communication Boards. Journal of Korean institue for practical engineering education, 7(2), 97-105. https://doi.org/10.14702/JPEE.2015.097
  15. Hwang, Y.H., Mun, K.J. & Park, Y.B. (2016). Study of Perception on Programming and Computational Thinking and Attitude toward Science Learning of High School Students through Software Inquiry Activity: Focus on using Scratch and physical computing materials. Journal of the Korean Association for Science Education, 36(2), 325-335. https://doi.org/10.14697/jkase.2016.36.2.0325
  16. Jeon, S.K. (2016). A study on Programming Education using Physical Computing for Sustainable Interest Development. Doctorial thesis, Korea National University of Education.
  17. Jung, M.Y., Kim, S.I. & Kim, J.S. (2018). Development of Bicycle Lighting Device Maker Educational Materials based on Design Thinking for Secondary School Students. Asia Pacific Journal of Multimedia services convergent with Art, Humanities and Sociology, 8, 235-244. https://doi.org/10.35873/AJMAHS.2018.8.11.023
  18. Kang, I.A. & Choi, S.K. (2017). Maker Mindsets Experienced Through the Maker Activity in Library: Focusing on Social Relationships among Makers. The Journal of Learner-Centered Curriculum and Instruction, 17(19), 407-430. https://doi.org/10.22251/jlcci.2017.17.19.407
  19. Kang, I.A. & Kim, H.S. (2017). Exploring the Value of the Maker Mind Set at Maker Education. The Journal of the Korea Contents Association, 17(10), 250-267. https://doi.org/10.5392/JKCA.2017.17.10.250
  20. Kang, I.A., Kim, Y.S. & Yoon, H.J. (2017). Fostering Entrepreneurship by Maker Education : A Case Study in an Higher Education. Journal of the Korea Convergence Society, 8(7), 253-264. https://doi.org/10.15207/JKCS.2017.8.7.253
  21. Kang, M.J. (2018). Development of checklist for development and operation of maker education program, Master thesis, KyungHee University.
  22. KERIS (2016). Redesigning education and emerging school models in the age of technology. KERIS Research Material KR2016-3.
  23. Kim, J.H. & Kim, T.Y. (2016). The Effect of Physical Computing Education to Improve the Convergence Capability of Secondary Mathematics-Science Gifted Students. Journal of Korean computer education, 19(2), 87-98.
  24. Kim, S.Y., Jeong, Y.J. & Hwang, Y.S. (2016). A Study on the Composition and Characteristic of Maker Space. In Proceedings of Korean Institute of interior design conference, 203-206.
  25. Kim, Y.J. (2018). Digital talent for Digital transformation and Learning Innovation. Communications of the Korean Institute of Information Scientists and Engineers, 36(11), 32-34.
  26. Kim, W.W. & Choi, J.S (2016). Development and application of a turtle ship model based on physical computing platform for student's of industrial specialized high school. Journal of Korean Industrial Education, 41(2), 89-118. https://doi.org/10.35140/kiiedu.2016.41.2.89
  27. Lee, J.S. (2017). A Study of Design Thinking Adaptation for Maker Education Process. Korea Design Forum, 54, 225-234.
  28. Lee, J.H. & Jang, J.H. (2017). Development of Maker Education Program based on Softeware Coding for the Science Gifted. Journal of gifted/talented education, 27(3), 331-348. https://doi.org/10.9722/JGTE.2017.27.3.331
  29. Lee, S.C. & Kim, T.Y. (2018). The Development of an Elementary Teacher Training Program for Design Thinking-Based Maker Education. In Proceedings of the Korean Association Computer Education Conference, 22(1), 111-114.
  30. Martine, S.L. & Stager, G.S. (2013). Papert's prison fab lab: implications for the maker movement and education design. In Proceedings of the 12th International Conference on Interaction Design and Children (pp. 487-490). ACM.
  31. Noh, Y.H., Kang, J.A. & Jung, E.J. (2015). A Qualitative Evaluation Research on the Relationship Between Creative Thinking and an Infinite Creative Space Program. Journal of Korean Library and Information Science Society, 46(2), 71-111. https://doi.org/10.16981/kliss.46.201506.71
  32. Patton, M.Q. (2002). Qualitative Research & Evlauation Method. London: Sage Publications.
  33. Peppler, K., Halverson, E., & Kafai, Y.B. (Eds.) (2016). Makeology: Makerspaces as Learning Environments (Vol. 1). Routledge.
  34. Seo, Y.K. (2017). Development of Creative Thinking and Coding Course method on Design Thinking using Flipped Learning. The Journal of Learner-Centered Curriculum and Instruction, 17, 173-199.
  35. Seong, T.J. (2017). Suggestions for the human character and education in the era of the Fourth Industrial Revolution. Educational Research Journal, 55(2), 1-21.
  36. Sheridan, K., Halverson, E.R., Litts, B., Brahms, L., Jacobs-Priebe, L. & Owens, T. (2014). Learning in the making: A comparative case study of three makerspaces. Harvard Educational Review, 84(4), 505-531. https://doi.org/10.17763/haer.84.4.brr34733723j648u
  37. Woo, Y.J. & Lee, J.H. (2018). Development and Application of Design Thinking-Based Maker Education Program. Journal of Creative Information Culture, 4(1), 35-43. https://doi.org/10.32823/jcic.4.1.201804.35

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