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  4. An integrated deep neural network for defect detection in dynamic textile textures
 
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2018
Conference Paper
Title

An integrated deep neural network for defect detection in dynamic textile textures

Abstract
This paper presents a comprehensive defect detection method for two common fabric defects groups. Most existing systems require textiles to be spread out in order to detect defects. This method can be applied when the textiles are not spread out and does not require any pre- processing. The deep learning architecture we present is based on transfer learning and localizes and recognizes cuts, holes and stain defects. Classification and localization is combined into a single system combining two different networks. The experiments this paper presents show that even without adding depth information, the network was able to distinguish between stain and shadow. This method has been successful even for textiles in voluminous shape and is less computationally intensive than other state-of-the-art methods.
Author(s)
Siegmund, Dirk
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Prajapati, Ashok
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Kirchbuchner, Florian  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Kuijper, Arjan  orcid-logo
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Mainwork
Progress in Artificial Intelligence and Pattern Recognition. 6th International Workshop, IWAIPR 2018  
Conference
International Workshop on Artificial Intelligence and Pattern Recognition (IWAIPR) 2018  
DOI
10.1007/978-3-030-01132-1_9
Language
English
Fraunhofer-Institut für Graphische Datenverarbeitung IGD  
Keyword(s)
  • Lead Topic: Digitized Work

  • Research Line: Computer vision (CV)

  • deep learning

  • defect detection

  • computer vision

  • textile industry

  • quality assurance

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