Paper
1 April 2024 Weld defect detection model based on machine vision
Yan Wu, Shixiao Yan, Xiaoqi Zhao
Author Affiliations +
Proceedings Volume 13081, Third International Conference on Advanced Manufacturing Technology and Electronic Information (AMTEI 2023); 130810S (2024) https://doi.org/10.1117/12.3025835
Event: 2023 3rd International Conference on Advanced Manufacturing Technology and Electronic Information (AMTEI 2023), 2023, Tianjin, China
Abstract
Addressing the shortcomings of low accuracy and time-consuming nature in manual weld defect detection, this study applies machine vision to weld defect detection. Based on the SSD target detection network, it firstly introduces the model structure and detection process of the SSD target detection network. Secondly, it describes the relevant evaluation indicators and the preparation of the dataset. Finally, the SSD network is used to train and verify the dataset. The result shows that the average accuracy of the model for these four types of recognition is 66.49%, indicating that the SSD target detection model has good detection ability for weld defects, providing a way for the application of machine vision in recognizing weld defects.
(2024) Published by SPIE. Downloading of the abstract is permitted for personal use only.
Yan Wu, Shixiao Yan, and Xiaoqi Zhao "Weld defect detection model based on machine vision", Proc. SPIE 13081, Third International Conference on Advanced Manufacturing Technology and Electronic Information (AMTEI 2023), 130810S (1 April 2024); https://doi.org/10.1117/12.3025835
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KEYWORDS
Object detection

Defect detection

Machine vision

Image processing

Target detection

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