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3D PRINTING FOR SUPPORTING TEACHING AND LEARNING IN GISCIENCE

Burian, Tomas, Brus, Jan

First published: 2016-06-28https://doi.org/10.5593/sgem2016/b21/s08.069View metrics

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Publication details

Title
3D PRINTING FOR SUPPORTING TEACHING AND LEARNING IN GISCIENCE
Authors
Burian, Tomas, Brus, Jan
Proceedings
SGEM International Multidisciplinary Scientific GeoConference EXPO Proceedings; 16th International Multidisciplinary Scientific GeoConference SGEM2016, Informatics, Geoinformatics and Remote Sensing
Publisher
Stef92 Technology
Year
2016
Pages
547-552
ISSN
1314-2704
ISBN
978-619-7105-58-2
Language
en
Publication type
Conference Paper
References14
  1. Berlin, A., Hernandez, A., Kinsley, J., & Russell, D. (2007). Apparatus and methods for 3D printing.

  2. Brus, J., & Barvíř, R. (2015). Coping with Integrating Low -Cost 3D Printing and Surface Models: A Case Study on Prusa i3 Surface Models for Geosciences (pp. 45-59): Springer.

  3. Chua, C. K., Leong, K. F., & Lim, C. S. (2010). Rapid prototyping: principles and applications: World Scientific.

  4. von Wyss, M. (2015). 3D-Printed Landform Models. Cartographic Perspectives(79), 61-67.

  5. Rase, W.-D. (2012). Creating physical 3D maps using rapid prototyping techniques True-3D in Cartography (pp. 119-134): Springer.

  6. Jacobs, L. D. (2003). Terrain modeling using rapid prototyping. West Lafayette, Indiana: School of Civil Engineering Purdue University work performed at Milwaukee School of Engineering.

  7. Schwarzbach, F., Sarjakoski, T., Oksanen, J., Sarjakoski, L. T., & Weckman, S. (2012). Physical 3D models from LIDAR data as tactile maps for visually impaired persons True-3D in Cartography (pp. 169-183): Springer. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org 16th International Multidisciplinary Scientific GeoConference SGEM 2016 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

  8. Berlin, A., Hernandez, A., Kinsley, J., & Russell, D. (2007). Apparatus and methods for 3D printing.

  9. Brus, J., & Barvíř, R. (2015). Coping with Integrating Low -Cost 3D Printing and Surface Models: A Case Study on Prusa i3 Surface Models for Geosciences (pp. 45-59): Springer.

  10. Chua, C. K., Leong, K. F., & Lim, C. S. (2010). Rapid prototyping: principles and applications: World Scientific.

  11. von Wyss, M. (2015). 3D-Printed Landform Models. Cartographic Perspectives(79), 61-67.

  12. Rase, W.-D. (2012). Creating physical 3D maps using rapid prototyping techniques True-3D in Cartography (pp. 119-134): Springer.

  13. Jacobs, L. D. (2003). Terrain modeling using rapid prototyping. West Lafayette, Indiana: School of Civil Engineering Purdue University work performed at Milwaukee School of Engineering.

  14. Schwarzbach, F., Sarjakoski, T., Oksanen, J., Sarjakoski, L. T., & Weckman, S. (2012). Physical 3D models from LIDAR data as tactile maps for visually impaired persons True-3D in Cartography (pp. 169-183): Springer. 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org 16th International Multidisciplinary Scientific GeoConference SGEM 2016 16th International Multidisciplinary Scientific GeoConference SGEM2016 www.sgem.org

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Number of times cited according to Crossref: 1

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