id |
acadia18_146 |
authors |
Rossi, Gabriella; Nicholas, Paul |
year |
2018 |
title |
Re/Learning the Wheel. Methods to Utilize Neural Networks as Design Tools for Doubly
Curved Metal Surfaces |
doi |
https://doi.org/10.52842/conf.acadia.2018.146
|
source |
ACADIA // 2018: Recalibration. On imprecisionand infidelity. [Proceedings of the 38th Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA) ISBN 978-0-692-17729-7] Mexico City, Mexico 18-20 October, 2018, pp. 146-155 |
summary |
This paper introduces concepts and computational methodologies for utilizing neural networks as design tools for architecture and demonstrates their application in the making of doubly curved metal surfaces using a contemporary version of the English Wheel. The research adopts an interdisciplinary approach to develop a novel method to model complex geometric features using computational models that originate from the field of computer vision. The paper contextualizes the approach with respect to the current state of the art of the usage of artificial neural networks both in architecture and beyond. It illustrates the cyber physical system that is at the core of this research, with a focus on the employed neural network–based computational method. Finally, the paper discusses the repercussions of these design tools on the contemporary design paradigm. |
keywords |
full paper, ai & machine learning, digital craft, robotic production, computation |
series |
ACADIA |
type |
paper |
email |
|
full text |
file.pdf (4,861,765 bytes) |
references |
Content-type: text/plain
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last changed |
2022/06/07 07:56 |
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