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  4. A Dataset of Pulsed Thermography for Automated Defect Depth Estimation
 
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December 8, 2023
Journal Article
Title

A Dataset of Pulsed Thermography for Automated Defect Depth Estimation

Abstract
Pulsed thermography is an established nondestructive evaluation technology that excels at detecting and characterizing subsurface defects within specimens. A critical challenge in this domain is the accurate estimation of defect depth. In this paper, a new publicly accessible pulsed infrared dataset for PVC specimens is introduced. It was enriched with 3D positional information to advance research in this area. To ensure the labeling quality, a comparative analysis of two distinct data labeling methods was conducted. The first method is based on human domain expertise, while the second method relies on 3D CAD images. The analysis showed that the CAD-based labeling method noticeably enhanced the precision of defect dimension quantification. Additionally, a sophisticated deep learning model was employed on the data, which were preprocessed by different methods to predict both the two-dimensional coordinates and the depth of the identified defects.
Author(s)
Wei, Ziang  
Faculty of Science and Engineering, Department of Electrical and Computer Engineering
Osman, Ahmad  
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Valeske, Bernd  
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Maldague, Xavier
Faculty of Science and Engineering, Department of Electrical and Computer Engineering
Journal
Applied Sciences  
Open Access
DOI
10.3390/app132413093
10.24406/publica-2349
File(s)
23048.pdf (5.56 MB)
Rights
CC BY 4.0: Creative Commons Attribution
Language
English
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Keyword(s)
  • pulsed thermography

  • deep learning

  • defect detection

  • depth estimation

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