id |
caadria2022_453 |
authors |
Yang, Xiliu, Amtsberg, Felix, Skoury, Lior, Wagner, Hans Jakob and Menges, Achim |
year |
2022 |
title |
Vizor, Facilitating Cyber-physical Workflows in Prefabrication through Augmented Reality |
source |
Jeroen van Ameijde, Nicole Gardner, Kyung Hoon Hyun, Dan Luo, Urvi Sheth (eds.), POST-CARBON - Proceedings of the 27th CAADRIA Conference, Sydney, 9-15 April 2022, pp. 141-150 |
doi |
https://doi.org/10.52842/conf.caadria.2022.2.141
|
summary |
This research presents Vizor, a software framework to facilitate Human Robot Collaboration (HRC) in fabrication using Augmented Reality (AR), specifically within the environment of high Level of Automation (LoA) prefabrication for the AEC industry. The framework supports skill set extensions of fabrication setups via the integration of human craft and automation through AR and improves the accessibility and adaptability of these fabrication setups. It features a Grasshopper plugin for low-barrier-to-entry prototyping and an integrated HoloLens application for operation. The tool is demonstrated through three use case examples and validated in a proof-of-concept case study involving a craftsperson and a 14-Axis robotic setup, which demonstrates a novel interactive task-sharing process. Vizor opens new opportunities to extend robotic prefabrication with craftspeople who are skilled yet untrained in robotic control and provides greater access to tools for prototyping HRC workflows. |
keywords |
augmented reality, human robot collaboration, cyber-physical fabrication, SDG 8, SDG 9, SDG 12 |
series |
CAADRIA |
email |
|
full text |
file.pdf (871,541 bytes) |
references |
Content-type: text/plain
|
Atanasova, L., Mitterberger, D., Sandy, T., Gramazio, F., Kohler, M. & Dörfler, K. (2020)
Prototype As Artefact
, Proceedings of the 40th Annual Conference of the Association of Computer Aided Design in Architecture (ACADIA), 350–359
|
|
|
|
Caudell, T. P. & Mizell, D. W. (1992)
Augmented reality: An application of heads-up display technology to manual manufacturing processes
, Proceedings of the Twenty-Fifth Hawaii International Conference on System Sciences (pp. 659–669). https://doi.org/10.1109/HICSS.1992.183317
|
|
|
|
Garcia del Castillo y López, J. L. (2019)
Robot Ex Machina
, Proceedings of the 39th Annual Conference of the Association for Computer Aided Design in Architecture. Ubiquity and Autonomy
|
|
|
|
Garcia, M. A. R., Rojas, R., Gualtieri, L., Rauch, E. & Matt, D. (2019)
A human-in-the-loop cyber-physical system for collaborative assembly in smart manufacturing
, Procedia CIRP, 81, 600–605. https://doi.org/10.1016/j.procir.2019.03.162
|
|
|
|
Jahn, G., Newnham, C., van der Berg, N. & Beanland, M. (2018)
Making in Mixed Reality
, Proceedings of the 38th Annual Conference of the Association for Computer Aided Design in Architecture. Recalibration: On Imprecision and Infidelity, Mexico City
|
|
|
|
Johns, R. L. (2017)
Augmented Materiality: Modelling with Material Indeterminacy
, Negotiating Design & Making, Fabricate 2014: Negotiating Design & Making, 216–223. https://doi.org/10.2307/j.ctt1tp3c5w
|
|
|
|
Kyjanek, O., Al Bahar, B., Vasey, L., Wannemacher, B. & Menges, A. (2019)
Implementation of an Augmented Reality AR Workflow for Human Robot Collaboration in Timber Prefabrication
, 36th International Symposium on Automation and Robotics in Construction, Banff, AB, Canada. https://doi.org/10.22260/ISARC2019/0164
|
|
|
|
Menges, A. (2015)
The New Cyber-Physical Making in Architecture: Computational Construction
, Architectural Design, 85(5), 28–33. https://doi.org/10.1002/ad.1950
|
|
|
|
Mitterberger, D., Dörfler, K., Sandy, T., Salveridou, F., Hutter, M., Gramazio, F. & Kohler, M. (2020)
Augmented bricklaying: Human–machine interaction for in situ assembly of complex brickwork using object-aware augmented reality
, Construction Robotics, 4(3–4), 151–161. https://doi.org/10.1007/s41693-020-00035-8
|
|
|
|
Mueller, S., Seufert, A., Peng, H., Kovacs, R., Reuss, K., Guimbretiere, F. & Baudisch, P. (2019)
FormFab: Continuous Interactive Fabrication
, Proceedings of the Thirteenth International Conference on Tangible, Embedded, and Embodied Interaction (pp. 315–323). https://doi.org/10.1145/3294109.3295620
|
|
|
|
Peng, H., Briggs, J., Wang, C.-Y., Guo, K., Kider, J., Mueller, S., Baudisch, P. & Guimbretiere, F. (2018)
RoMA: Interactive Fabrication with Augmented Reality and a Robotic 3D Printer
, Proceedings of the 2018 CHI Conference on Human Factors in Computing Systems, 1–12. https://doi.org/10.1145/3173574.3174153
|
|
|
|
Wagner, H. J., Alvarez, M., Groenewolt, A. & Menges, A. (2020)
Towards digital automation flexibility in large-scale timber construction: Integrative robotic prefabrication and co-design of the BUGA Wood Pavilion
, Construction Robotics, 4(3–4), 187–204. https://doi.org/10.1007/s41693-020-00038-5
|
|
|
|
Yoshida, H., Igarashi, T., Obuchi, Y., Takami, Y., Sato, J., Araki, M., Miki, M., Nagata, K., Sakai, K. & Igarashi, S. (2015)
Architecture-scale human-assisted additive manufacturing
, ACM Transactions on Graphics, 34(4), 1–8. https://doi.org/10.1145/2766951
|
|
|
|
last changed |
2022/07/22 07:34 |
|