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  4. Multi-Printer Learning Framework for Efficient Optical Printer Characterization
 
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2023
Journal Article
Title

Multi-Printer Learning Framework for Efficient Optical Printer Characterization

Abstract
A high prediction accuracy of optical printer models is a prerequisite for accurately reproducing visual attributes (color, gloss, translucency) in multimaterial 3D printing. Recently, deep-learning-based models have been proposed, requiring only a moderate number of printed and measured training samples to reach a very high prediction accuracy. In this paper, we present a multi-printer deep learning (MPDL) framework that further improves data efficiency utilizing supporting data from other printers. Experiments on eight multi-material 3D printers demonstrate that the proposed framework can significantly reduce the number of training samples thus the overall printing and measurement efforts. This makes it economically feasible to frequently characterize 3D printers to achieve a high optical reproduction accuracy consistent across different printers and over time, which is crucial for color- and translucency-critical applications.
Author(s)
Chen, Danwu  
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Urban, Philipp  
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Journal
Optics Express  
Project(s)
Advanced Visual and Geometric Computing for 3D Capture, Display, and Fabrication  
Funding(s)
H2020  
Funder
European Commission  
Open Access
File(s)
Download (2.55 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.1364/OE.487526
10.24406/publica-1261
Additional full text version
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Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • Branche: Information Technology

  • Research Line: Machine learning (ML)

  • LTA: Machine intelligence, algorithms, and data structures (incl. semantics)

  • 3D Printing

  • Deep learning

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