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  • Journal of Materials and Mechatronics: A
  • Volume:5 Issue:2
  • Deep Learning Application and Analysis In Detection of Metal Plate Surface Defects

Deep Learning Application and Analysis In Detection of Metal Plate Surface Defects

Authors : Can Tuncer, Cemil Közkurt, Serhat Kılıçarslan
Pages : 263-285
Doi:10.55546/jmm.1512549
View : 32 | Download : 27
Publication Date : 2024-12-20
Article Type : Research Paper
Abstract :In industrial manufacturing processes, detection of defects on the surfaces of metal plates supplied from iron and steel main industry manufacturers to be processed by machining and non-machining methods has an important place in estimating the values of the relevant plate such as safety and maintenance cost. With the developing technology and computer vision and deep learning applications finding a place in the industry, it has become possible to detect and classify metal plate surface defects more quickly and effectively with a lower error rate at an advanced technological level. Within the scope of this study, a deep learning model was created by using the TensorFlow library in the Python environment with using NEU Metal Surface Defects Dataset to detect metal plate surface defects. Then as an industrial application, a device prototype developed using Nvidia Jetson Nano and USB Camera, in order to test this model under real conditions.
Keywords : Metal Plaka, Yüzey Kusuru, Derin Öğrenme, Bilgisayarlı görü, Yapay Zeka, Makine Öğrenmesi

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