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  4. Defect Shape Detection and Defect Reconstruction in Active Thermography by means of Two-Dimensional Convolutional Neural Network as well as Spatiotemporal Convolutional LSTM Network
 
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2022
Journal Article
Title

Defect Shape Detection and Defect Reconstruction in Active Thermography by means of Two-Dimensional Convolutional Neural Network as well as Spatiotemporal Convolutional LSTM Network

Abstract
A neural network (NN) for semantic segmentation (U-Net) was used for the detection of crack-type defects from thermography sequences. For this task, data sequences of forged steel parts were acquired through induction thermography and the corresponding phase images calculated. The results for defect detection were quantitatively evaluated using Intersection over Union (IoU) metric. Further, a combination of 2D convolutional layer as well as LSTM (Long-Short-Term-Memory) is shown, which includes three-dimensional aspects in the form of time dependent and spatial changes and allows a defect shape reconstruction of back wall drillings. Therefore, pulsed thermography sequences were simulated with COMSOL Multiphysics. Finally, the reconstruction results were compared with the ground-truth defect profile using Mean Squared Error (MSE). The approaches provide improvements over conventional methods in non-destructive testing using infrared thermography.
Author(s)
Müller, David  
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Netzelmann, Udo  
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Valeske, Bernd  
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Journal
Quantitative infrared thermography  
Funder
European Commission EC  
DOI
10.1080/17686733.2020.1810883
Language
English
Fraunhofer-Institut für Zerstörungsfreie Prüfverfahren IZFP  
Keyword(s)
  • defect detection

  • defect profile reconstruction

  • neural networks

  • induction thermography

  • active thermography

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