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  • Tekstil ve Konfeksiyon
  • Volume:32 Issue:4
  • A Novel Industrial Application of CNN Approach: Real Time Fabric Inspection and Defect Classificatio...

A Novel Industrial Application of CNN Approach: Real Time Fabric Inspection and Defect Classification on Circular Knitting Machine

Authors : Halil İbrahim ÇELİK, Lale Canan DÜLGER, Burak ÖZTAŞ, Mehmet KERTMEN, Elif GÜLTEKİN
Pages : 344-352
Doi:10.32710/tekstilvekonfeksiyon.1017016
View : 49 | Download : 15
Publication Date : 2022-12-31
Article Type : Research Paper
Abstract :Fabric Automatic Visual Inspection insert ignore into journalissuearticles values(FAVI); system provides reliable performance on fabric defects inspection. This study presents a machine vision system developed to adapt in circular knitting machines where fabric defects can be automatically controlled and detected defects can be classified. The knitted fabric surface are detected during real-time manufacturing. For the classification process, three different transfer learning architectures insert ignore into journalissuearticles values(ResNet-50, AlexNet, GoogLeNet); have been applied. The five common knitted fabric defects were recognized with the artificial intelligence-based software and classified with an average success rate of 98% using ResNet-50 architecture. The success rates of the trained networks were compared.
Keywords : Circular knitting machine, Knitted fabric, Defect detection, Deep learning, Convolutional neural network CNNs,

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