Publikationen

Unsere Veröffentlichungen zu Themen aus dem Projekt

2025

  • Biehler, R., Engel, J., Frischemeier, D., & Podworny, S. (2025). Civic Statistical Literacy: Konzept und praxisnahe Umsetzung am Beispiel des Klimawandels. mathematica didactica, 48.
  • Biehler, R., Kawakami, T., Lampen, E., Weiland, T., & Zapata-Cardona, L. (2025). Statistics and data science education as a vehicle for empowering citizens – short summary of a survey. EMS Magazine.https://doi.org/10.4171/MAG/257
  • Biehler, R., & Schulte, C. (2025). Lessons Learned from the ProDaBi Project: Shaping Perspectives at the Intersection of Data, AI, and Education Titles. Symposium on Integrating AI and Data Science into School Education across Disciplines. https://openreview.net/forum?id=TGsuaghKD3
  • Biehler, R., & Wilkerson, M., H. (2025). The new role of data in society: Challenges and opportunities for mathematics education in the age of data science and AI. In M. B. Casabò, S. Carreira, G. Bolondi, M. Gaidoschick, & C. Spagnolo (Eds.), Proceedings of the Fourteenth Congress of the European Society for Research in Mathematics Education (CERME14) (pp. 59–96). Free University of Bozen-Bolzano; ERME
  • Binder, K., & Rößner, M. (2025). Software-Supported and Simulation-Based Introduction to Significance Tests. Symposium on Integrating AI and Data Science into School Education across Disciplines. https://openreview.net/forum?id=fJCRhPUH5b
  • Fleischer, Y., & Biehler, R. (2025). Analyzing Students’ Informal Approaches to Creating Decision Trees in the Classroom. In C. Cornejo, P. Felmer, D. M. Gómez, P. Dartnell, P. Araya, A. Peri, & V. Randolph (Eds.), Proceedings of the 48th Conference of the International Group for the Psychology of Mathematics Education: Research Reports, Vol. 1 (pp. 267–274).
  • Fleischer, Y., & Biehler, R. (2025). Exploring students’ constructions of data-based decision trees after an introductory teaching unit on machine learning. ZDM – Mathematics Education, 57(1), 153–173. https://doi.org/10.1007/s11858-025-01663-6
  • Frischemeier, D., & Biehler, R. (2025). Förderung von statistischem Denken im Mathematikunterricht der Primarstufe: Bedeutsame Ideen und Förderungsmöglichkeiten. Stochastik in der Schule, 45(1), 22–33.
  • Höper, L. (2025). Entwicklung und Evaluation des Konzepts Datenbewusstsein für informatische Bildung[Universität Paderborn]. https://digital.ub.uni-paderborn.de/doi/10.17619/UNIPB/1-2420
  • Höper, L., & Fleischer, Y. (2025). Empowering Students in a Data-Driven World: Explanatory Models for Understanding Data-Driven Technologies from Everyday Life. Symposium on Integrating AI and Data Science into School Education across Disciplines. https://openreview.net/forum?id=uwenNz2YMI
  • Höper, L., & Schulte, C. (2025). ReVEAL model and its application to revealing viewpoints on educational approaches to learning about data and AI. Computer Science Education, 1–33. https://doi.org/10.1080/08993408.2025.2516957
  • Hüsing, S., & Podworny, S. (2025). Empowering Students to Gain Insights within Data Exploration Projects in the Classroom—Using, Modifying, and Creating Data Moves through a Scaffolded Use of Digital Tools. Symposium on Integrating AI and Data Science into School Education across Disciplines.https://openreview.net/forum?id=pJtX42JGnT
  • Podworny, S., Biehler, R., & Fleischer, Y. (2025). Young students’ engagement with data to create decision trees. ZDM – Mathematics Education, 57(1), 175–191. https://doi.org/10.1007/s11858-024-01649-w
  • Podworny, S., Fleischer, Y., & Biehler, R. (2025). Explorative Datenanalyse in der Schule – Analyse der Mediennutzung von Jugendlichen mit den YOU‑PB Daten. Stochastik in der Schule, 45(2), 9–16.
  • Schönbrodt, S., & Podworny, S. (2025). Shaping the Future of Education: AI and Data Science Literacy as a Civic Imperative in Education. Symposium on Integrating AI and Data Science into School Education across Disciplines. https://openreview.net/forum?id=KVi7XcIx7N
  • Stoppel, H., & Hüsing, S. (2025). Konstruktionistisches Geometrielernen durch epistemisches Programmieren in Scratch. Beiträge zum Mathematikunterricht; 58. https://doi.org/10.17877/DE290R-25995

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